Nucleic acid encoding a human antibody against sialyl-Lewis a
Polynucleotides encoding antibodies that bind to sLe a are developed for pancreatic cancer treatment and detection, addressing the inadequacies of existing tools by demonstrating high affinity and efficacy in tumor detection and treatment.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- BIONTECH RESEARCH & DEVELOPMENT INC
- Filing Date
- 2025-05-29
- Publication Date
- 2026-04-14
AI Technical Summary
Current diagnostic and therapeutic tools for pancreatic cancer and other cancers expressing sialyl-Lewis a (sLe a) are inadequate, with FDG-PET being insensitive to small lesions and metastases, and there is a need for antibodies that specifically recognize tumor-specific carbohydrates to treat and detect malignant lesions and metastases.
Development of polynucleotides encoding antibodies or functional fragments that bind to sLe a, including specific VH and VL domains, which can be conjugated with diagnostic or therapeutic agents for detecting and treating cancers expressing sLe a.
The antibodies demonstrate high affinity and efficacy in in vitro and in vivo models, showing potential for tumor detection and treatment, including complement-dependent cytotoxicity and antibody-dependent cell-mediated cytotoxicity, and effective tumor regression in xenograft models.
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Abstract
Description
[Technical Field]
[0001] This application claims priority to U.S. Provisional Application No. 61 / 870,137, filed on 26 August 2013. The entire contents of that application are incorporated herein by reference.
[0002] This invention was made with government support under grant number CA-128362, awarded by the National Cancer Institute, NIH. The Government of the United States has certain rights in this application.
[0003] Background of the Invention This invention generally refers to sialyl-Lewis a (sLe a Regarding antibodies targeting ), more specifically, anti-sLe a This relates to polynucleotides encoding antibodies and the corresponding encoded antibodies or fragments thereof. [Background technology]
[0004] Passive administration of antibodies targeting tumor-specific antigens may eliminate tumor cells and early metastases during cancer development. This treatment may also have a significant impact on cancer recurrence. Antibodies targeting tumor-specific carbohydrates may be useful candidates in this cancer treatment. For example, many tumor-limited monoclonal antibodies produced by immunizing mice with human cancer cells have been shown to target carbohydrate antigens expressed as glycolipids or glycoproteins on the cell surface. a It has been shown to be expressed in tumors of the gastrointestinal tract. a The expression of this gene has also been shown to affect metastatic potential, correlating with increased metastatic potential in human colorectal cancer and pancreatic adenocarcinoma. However, carbohydrate chemistry is rather complex, and the clinical development of antibodies that recognize such tumor-specific carbohydrates has been slow.
[0005] Pancreatic cancer is one of the most invasive adenocarcinomas and often has a poor prognosis. Pancreatic cancer is the fourth leading cause of cancer mortality. Despite advances in screening for various cancers, the reliability of detecting malignant lesions arising from the pancreas remains insufficient. Positron emission tomography (FDG-PET) using fluorodeoxyglucase is applicable for the detection and staging of pancreatic cancer. However, FDG-PET is insensitive to pancreatitis in the process of differentiating from malignant tumors, and there are still problems in the staging of small primary lesions (<7 mm) and liver metastases (<1 cm). One diagnostic screening method used to monitor the status of patients with pancreatic ductal adenocarcinoma (PDAC) involves detecting an increase in the level of circulating sLe a antigen in the serum. Patients with a circulating sLe a antigen level > 37 U / ml show cancer recurrence. However, the development of alternative diagnostic tools using such tumor-specific carbohydrates has been slow.
[0006] Therefore, there is a need to identify and generate antibodies that specifically recognize tumor-specific carbohydrates such as sLe a to treat recurrent cancers and detect malignant lesions and metastases. The present invention meets this need and provides related advantages.
Summary of the Invention
Means for Solving the Problems
[0007] According to the present invention, there is provided herein a composition for producing an antibody or a functional fragment thereof that binds to sLe a . The composition includes an isolated polynucleotide encoding an antibody or a functional fragment thereof that includes a variable heavy chain (VH) domain having the amino acid sequence provided herein. The isolated polynucleotide of the present invention may also include a nucleic acid sequence encoding the VH domain of the antibody or a functional fragment thereof provided herein.
[0008] In another embodiment of the present invention, the isolated polynucleotide may encode an antibody or a functional fragment thereof comprising a variable light chain (VL) domain having an amino acid sequence provided herein. The isolated polynucleotide of the present invention may also include a nucleic acid sequence, provided herein, encoding the VL domain of an antibody or a functional fragment thereof.
[0009] The composition of the present invention, sLe a The invention also includes isolated antibodies or functional fragments thereof that bind to sLe. In some embodiments, the present invention relates to sLe a The present invention provides an isolated antibody or functional fragment thereof that binds to a VH domain having the amino acid sequence provided herein.
[0010] In some embodiments, the present invention is sSle a The present invention provides an isolated antibody or functional fragment thereof that binds to a VL domain having the amino acid sequence provided herein.
[0011] In some embodiments, the present invention is sSle a The present invention provides an isolated antibody or functional fragment thereof that binds to a specific molecule, comprising both a VH domain and a VL domain, wherein the VH domain and the VL domain each contain the respective amino acid sequences of the VH domain and VL domain of the clone isolate provided herein.
[0012] In some embodiments, the present invention provides conjugates in which an antibody or functional fragment provided herein is conjugated or recombinantly fused with a diagnostic agent, detectable agent, or therapeutic agent. Some aspects of the present invention concern conjugates of the present invention comprising a detectable agent that can be used in a method for detecting and / or diagnosing tumorigenesis. Such a method may include the step of administering an effective amount of the conjugate to a subject requiring it.
[0013] In some embodiments, the present invention provides a pharmaceutical composition having one or more antibodies or functional fragments of the present invention and a pharmaceutically acceptable carrier. In some embodiments, the present invention also provides a method for treating or preventing a disease by administering a therapeutically effective amount of the pharmaceutical composition of the present invention to a subject who requires treatment or prevention of the disease. In yet another embodiment, the present invention provides administering a second therapeutic agent simultaneously with or sequentially with the antibodies or functional fragments of the present invention. In certain embodiments, for example, the following are provided: (Item 1) Isolated polynucleotides encoding an antibody heavy chain or a functional fragment thereof, wherein the antibody heavy chain or functional fragment comprises a variable heavy chain (VH) domain having an amino acid sequence selected from the group consisting of residues 20-142 of SEQ ID NO: 2, residues 20-142 of SEQ ID NO: 6, residues 20-142 of SEQ ID NO: 10, and residues 20-145 of SEQ ID NO: 14. (Item 2) The isolated polynucleotide described in item 1, wherein the amino acid sequence of the VH domain is encoded by a nucleic acid sequence selected from the group consisting of residues 58-426 of SEQ ID NO: 1, residues 58-426 of SEQ ID NO: 5, residues 58-426 of SEQ ID NO: 9, and residues 58-435 of SEQ ID NO: 13. (Item 3) Isolated polynucleotides encoding an antibody light chain or a functional fragment thereof, wherein the antibody light chain or functional fragment comprises a variable light chain (VL) domain having an amino acid sequence selected from the group consisting of residues 20-130 of SEQ ID NO: 4, residues 20-129 of SEQ ID NO: 8, residues 20-130 of SEQ ID NO: 12, and residues 23-130 of SEQ ID NO: 16. (Item 4) The isolated polynucleotide described in item 3, wherein the amino acid sequence of the VL domain is encoded by a nucleic acid sequence selected from the group consisting of residues 58-390 of SEQ ID NO: 3, residues 58-387 of SEQ ID NO: 7, residues 58-390 of SEQ ID NO: 11, and residues 67-390 of SEQ ID NO: 15. (Item 5) Siaryl-Lewis a An isolated antibody or functional fragment thereof that binds to a, wherein the antibody or functional fragment thereof comprises a variable heavy chain (VH) domain, and the VH domain comprises an amino acid sequence selected from the group consisting of residues 20-142 of SEQ ID NO: 2, residues 20-142 of SEQ ID NO: 6, residues 20-142 of SEQ ID NO: 10, and residues 20-145 of SEQ ID NO: 14. (Item 6) Siaryl-Lewis a An isolated antibody or functional fragment that binds to a, wherein the antibody or functional fragment comprises a variable light chain (VL) domain, and the VL domain comprises an amino acid sequence selected from the group consisting of residues 20-130 of SEQ ID NO: 4, residues 20-129 of SEQ ID NO: 8, residues 20-130 of SEQ ID NO: 12, and residues 23-130 of SEQ ID NO: 16. (Item 7) Siaryl-Lewis a An isolated antibody or functional fragment that binds to a variable heavy chain (VH) domain and a variable light chain (VL) domain, wherein the VH domain and the VL domain each contain an amino acid sequence selected from the group consisting of residues 20-142 of SEQ ID NO: 2 and 20-130 of SEQ ID NO: 4; residues 20-142 of SEQ ID NO: 6 and 20-129 of SEQ ID NO: 8; residues 20-142 of SEQ ID NO: 10 and 20-130 of SEQ ID NO: 12; and residues 20-145 of SEQ ID NO: 14 and 23-130 of SEQ ID NO: 16. (Item 8) An isolated antibody or functional fragment thereof as described in any one of items 5 to 7, wherein the antibody is a human antibody. (Item 9) An isolated antibody or functional fragment according to any one of items 5 to 7, wherein the antibody functional fragment is selected from the group consisting of Fab, Fab', F(ab')2, scFV, diabody, triabody, minibody, and single-domain antibody (sdAB). (Item 10) The antibody or functional fragment according to item 9, wherein the antibody functional fragment is a diabody. (Item 11) The antibody or functional fragment according to item 10, wherein the diabody comprises the amino acid sequence of SEQ ID NO: 18 or 20. (Item 12) An isolated antibody or functional fragment thereof according to any one of items 5 to 7, wherein the antibody is a monoclonal antibody. (Item 13) An isolated antibody or functional fragment thereof according to any one of items 5 to 7, wherein the antibody is of the IgG or IgM isotype. (Item 14) The isolated antibody or functional fragment thereof described in item 13, wherein the IgG antibody is of the IgG1 subclass. (Item 15) A conjugate comprising an isolated antibody or functional fragment as described in any one of items 5 to 7, which is conjugated with or recombinantly fused with a diagnostic agent, detectable agent, or therapeutic agent. (Item 16) A conjugate as described in item 15, containing a detectable agent. (Item 17) The detectable agent is zirconium ( 89 The conjugate described in item 16, which is Zr). (Item 18) A pharmaceutical composition comprising an antibody or functional fragment described in any one of items 5 to 7 and a pharmaceutically acceptable carrier. (Item 19) A method for treating or preventing a disease, comprising the step of administering a therapeutically effective amount of the pharmaceutical composition described in item 18 to a subject who is in need of treatment or prevention of a disease. (Item 20) The disease is cancer or tumor formation, and the cells of the cancer or tumor are sLe a The method described in item 19, which expresses the following. (Item 21) The method according to item 20, wherein the cancer or tumor is selected from the group consisting of tumors of the gastrointestinal tract, colon cancer, colorectal adenocarcinoma, metastatic colon cancer, colorectal cancer, pancreatic cancer, pancreatic adenocarcinoma, small cell lung cancer, bladder adenocarcinoma, ovarian signet ring cell carcinoma, ovarian cancer, metastatic cancer, gastric adenocarcinoma, esophageal adenocarcinoma, pharyngeal adenocarcinoma, urogenital adenocarcinoma, and mammary adenocarcinoma. (Item 22) The method according to item 19, further comprising the step of administering a second therapeutic agent simultaneously or sequentially. (Item 23) The method according to item 22, wherein the second therapeutic agent is a chemotherapeutic agent or an immunotherapy agent. (Item 24) A method for detecting a tumor in a subject, comprising the step of administering an effective dose of the conjugate described in item 16 to a subject in which the detection of a tumor is required. [Brief explanation of the drawing]
[0014] [Figure 1] Figure 1 shows the nucleotide and encoded amino acid sequences of the variable weight (VH) chain domain and leader sequence of clone 5B1, which can be used for recombinant expression. The top of the figure shows the alignment of the nucleotide sequence of SEQ ID NO: 1 and the amino acid sequence of SEQ ID NO: 2. Three complementarity-determining regions (CDR1, CDR2, and CDR3) have also been identified. [Figure 2] Figure 2 shows the nucleotide and encoded amino acid sequences of the variable light (VL) chain domain and leader sequence of clone 5B1 that can be used for recombinant expression. The top of the figure shows the alignment of the nucleotide sequence of SEQ ID NO: 3 and the amino acid sequence of SEQ ID NO: 4. Three complementarity-determining regions (CDR1, CDR2, and CDR3) have also been identified. [Figure 3]Figure 3 shows the nucleotide sequences and encoded amino acid sequences of the variable weight (VH) chain domain and leader sequence of clone 9H3 that can be used for recombinant expression. The top of the figure shows the alignment of the nucleotide sequence of SEQ ID NO: 5 and the amino acid sequence of SEQ ID NO: 6. Three complementarity-determining regions (CDR1, CDR2, and CDR3) have also been identified. [Figure 4] Figure 4 shows the nucleotide and encoded amino acid sequences of the variable light (VL) chain domain and leader sequence of clone 9H3 that can be used for recombinant expression. The top of the figure shows the alignment of the nucleotide sequence of SEQ ID NO: 7 and the amino acid sequence of SEQ ID NO: 8. Three complementarity-determining regions (CDR1, CDR2, and CDR3) have also been identified. [Figure 5] Figure 5 shows the nucleotide sequences and encoded amino acid sequences of the variable weight (VH) chain domain and leader sequence of clone 5H11 that can be used for recombinant expression. The top of the figure shows the alignment of the nucleotide sequence of SEQ ID NO: 9 and the amino acid sequence of SEQ ID NO: 10. Three complementarity-determining regions (CDR1, CDR2, and CDR3) have also been identified. [Figure 6] Figure 6 shows the nucleotide and encoded amino acid sequences of the variable light (VL) chain domain and leader sequence of clone 5H11 that can be used for recombinant expression. The top of the figure shows the alignment of the nucleotide sequence of SEQ ID NO: 11 and the amino acid sequence of SEQ ID NO: 12. Three complementarity-determining regions (CDR1, CDR2, and CDR3) have also been identified. [Figure 7] Figure 7 shows the nucleotide sequences and encoded amino acid sequences of the variable weight (VH) chain domain and leader sequence of clone 7E3, which can be used for recombinant expression. The top of the figure shows the alignment of the nucleotide sequence of SEQ ID NO: 13 and the amino acid sequence of SEQ ID NO: 14. Three complementarity-determining regions (CDR1, CDR2, and CDR3) have also been identified. [Figure 8]Figure 8 shows the nucleotide and encoded amino acid sequences of the variable light (VL) chain domain and leader sequence of clone 7E3, which can be used for recombinant expression. The top of the figure shows the alignment of the nucleotide sequence of SEQ ID NO: 15 and the amino acid sequence of SEQ ID NO: 16. Three complementarity-determining regions (CDR1, CDR2, and CDR3) have also been identified. [Figure 9] Figure 9 shows the nucleotide and encoded amino acid sequences of a diabody named 5B1CysDb, which possesses CDR1, CDR2, and CDR3 in both the variable heavy (VH) and variable light (VL) chain domains of clone 5B1. The top of the figure shows the alignment of the nucleotide sequence of SEQ ID NO: 17 and the amino acid sequence of SEQ ID NO: 18. The three complementarity-determining regions (CDR1, CDR2, and CDR3) in both the VH and VL domains are identified in bold, underlined text. The linker sequence and the amino acid-added polyhistidine tag (PolyHis tag) are also shown in italicized, underlined text. [Figure 10] Figure 10 shows the nucleotide and encoded amino acid sequences of a diabody named 7E3CysDb, which possesses CDR1, CDR2, and CDR2 in both the variable heavy (VH) and variable light (VL) chain domains of clone 7E3. The top of the figure shows the alignment of the nucleotide sequence of SEQ ID NO: 19 and the amino acid sequence of SEQ ID NO: 20. The three complementarity-determining regions (CDR1, CDR2, and CDR3) in both the VH and VL domains are identified in bold, underlined text. The linker sequence and the amino acid-added polyhistidine tag (PolyHis tag) are also shown in italicized, underlined text. [Figure 11A-11C]Panels A-E in Figure 11 show the binding of human anti-sLea antibodies to tumor cells, as analyzed by flow cytometry. Panel A shows DMS-79 cells stained with recombinant (r)5B1, 9H3, 5H11, and 7E3 antibodies. Panels B-F show HT29, BxPC3, SW626, SK-MEL28, and Colo205-luc cells stained with 1-2 μg / mL of r5B1 or r7E3 plus IgG or IgM-specific secondary antibodies, respectively, as described in Example I. [Figure 11D-11F] Panels A-E in Figure 11 show the binding of human anti-sLea antibodies to tumor cells, as analyzed by flow cytometry. Panel A shows DMS-79 cells stained with recombinant (r)5B1, 9H3, 5H11, and 7E3 antibodies. Panels B-F show HT29, BxPC3, SW626, SK-MEL28, and Colo205-luc cells stained with 1-2 μg / mL of r5B1 or r7E3 plus IgG or IgM-specific secondary antibodies, respectively, as described in Example I. [Figure 12] Panels A and B in Figure 12 show the CDC activity of r5B1 and r7E3 antibodies in the presence of human complement (Hu C'), measured against DMS-79 cells, compared to mouse 121SLE(IgM). Human isotype control antibodies, Hu IgG (◇) and Hu IgM (◆), showed <4% cytotoxicity. Dose-response data for r5B1 IgG (■), r7E3 IgM (●), and 121SLE mIgM (▲) antibodies are shown in Panel A. Calculated EC50 (μg / ml) values for r5B1(IgG), r7E3(IgM), and 121SLE(mIgM) antibodies are shown in Panel B. [Figure 13]Panels A-C in Figure 13 show antibody-dependent cell-mediated cytotoxicity (ADCC) of the r5B1 antibody. Panel A shows r5B1-mediated ADCC against DMS-79 cells using human PBMCs. PBMCs were tested with DMS-79 tumor cells in the presence or absence of 2 μg / mL of r5B1 at E:T ratios ranging from 100:1 to 12.5:1. Panel B shows r5B1-mediated ADCC against DMS-79 cells using primary human NK cells. NK cells were tested with DMS-79 tumor cells in the presence or absence of 2 μg / mL of r5B1 at low E:T ratios ranging from 5:1 to 0.6:1. Panel C shows ADCC of various concentrations of r5B1, using PBMCs from two donors with DMS-79 tumor cells at an E:T ratio of 1:100 in the presence of the indicated concentrations of r5B1. [Figure 14] Figure 14 shows the internal migration of sLea into BxPC3 cells. BxPC3 pancreatic tumor cells were grown in the presence of r5B1 (anti-sLea) or r1B7 (anti-GD2) antibodies conjugated with Hum-ZAP, an anti-human IgG conjugated with a saporin. After 3 days, cell viability was measured using the 3-(4,5-dimethylthiazole-2-yl)-2,5-diphenyltetrazolium bromide (MTT) assay, and sample values were normalized to values from untreated cultures. [Figure 15] Figure 15 shows the activity of the r5B1 antibody in a xenograft model using Colo205-luc cells. Severe combined immunodeficiency (SCID) mice (5 mice per group) were injected via tail vein on day 0 with 500,000 Colo205-luc cells. The mice were then intraperitoneally injected with r5B1 at a total dose of 600 μg on days 1, 7, 14, and 21 (Experiment 1, Exp1) or on days 1, 4, 7, 10, 14, and 21 (Experiment 2, Exp2) at a dose of 100 μg. Control (Ctrl) animals received a PBS sham injection. [Figure 16] Figure 16 shows the effect of r5B1 on Colo205-luc tumors in SCID mice. As described in Example I, mice were injected with r5B1 antibody at doses of 100 μg (▼), 300 μg (■), or 1 mg (◆) per injection. Control animals (■) received a sham injection of PBS. [Figure 17] Figure 17 shows fluorescence imaging of 5 mice per group with Colo205-luc tumors treated with r5B1 at day 0 and week 5. The mice were treated with the treatment regimen shown in Figure 16 and described in Example I. [Figure 18A] Panels A and B in Figure 18 show the antitumor activity using DMS-79 cells in a therapeutic subcutaneous xenograft model. Panel A shows suppression or regression in mice treated with 5B1 (5B1 alone (▲) or 5B1 + cRGD (▼)) compared with controls (■) injected with human IgG (IgG alone (◆) or IgG + cRGD (●)) and PBS. Arrows indicate the day of antibody or PBS injection. [Figure 18B] Panels A and B in Figure 18 show the antitumor activity of DMS-79 cells in a therapeutic subcutaneous xenograft model. Panel B shows representative images of treated mice. Arrows indicate the absence of any visible tumors. [Figure 19] Panels A-F in Figure 19 show the association of 5B1 to various tumor types. Panel A represents pancreatic, ductal adenocarcinoma, stage III tumors. Panel B represents sigmoid colon, carcinoma, stage IIIB tumors. Panel C represents lung, adenocarcinoma, stage IB tumors. Panel D represents bladder, mucinous adenocarcinoma, stage IV tumors. Panel E represents ovarian, metastatic cancer originating from colon tumors. Panel F represents lymph node, metastatic cancer, stage IIIA tumors. [Figure 20] Figure 20 shows stepwise PET maximum projection (MIP) images obtained at 2–120 hours using 89Zr radiolabeled 5B1 antibody (89Zr-5B1) administered intravenously to female SCID mice with subcutaneously implanted BxPC3 pancreatic tumors. PET-MIP image processing demonstrates high tumor uptake, accompanied by the elimination of nonspecifically bound tracers, as early as 24 hours after injection (h pi). [Figure 21]Figure 21 shows the in vivo distribution results. This is consistent with the PET data in Figure 20, and tumor uptake of 84.73 ± 12.28% ID / g was observed. Due to the small tumor weight, an inset graph shows tumor uptake expressed as %ID against time. Tumor %ID shows significant tumor uptake by 89Zr-5B1 at all time points, at least 7 times that of nonspecific 89Zr-IgG. Competitive inhibition with non-radioactive 5B1 (200 μg) shows a reduction in tumor accumulation. [Figure 22] Figure 22, panels A-C, shows PET-MIP images of mice with DMS79 xenografts (panel A) and mice with Colo205-luc xenografts (panel B). PET-MIP image processing depictions of tumors (T), hearts (H), and livers (L) with 89Zr-5B1 are shown. The colorectal Colo205-luc xenograft model showed 89Zr-5B1 accumulation peaking at 24 hours, which eventually decreased, but increased nonspecific binding to the liver was observed (panel C). [Figure 23] Figure 23 shows dose-dependent inhibition and regression of tumor growth in a DMS-79 small lung cell carcinoma xenograft model treated with sequential co-administration of 5B1 antibody and taxol (paclitaxel). Large arrows on the X-axis indicate treatment with 5B1. Co-administration of 5B1 antibody and taxol significantly restricted tumor growth and resulted in tumor regression compared to control human IgG (HuIgG) or individual administration of 5B1 antibody and taxol. Significant differences were shown by two-way ANOVA at p<0.01 (**) and p<0.001 (***). N=5. [Figure 24] Figure 24 shows the inhibition of tumor growth in a BxPc3 pancreatic cancer xenograft model treated with sequential co-administration of 5B1 antibody and taxol (paclitaxel). Large arrows on the X-axis indicate treatment with taxol and 5B1, while small arrows indicate treatment with 5B1 alone. Co-administration of 5B1 antibody and taxol significantly restricted tumor growth compared to the control (PBS-Ctrl; human IgG-HuIgG) or individual administration of 5B1 antibody and taxol. [Figure 25] Panels A and B in Figure 25 show representative images of mice orthotopically transplanted with BxPC3-luc pancreatic tumor xenografts. Panel A: Co-display of FDG-PET and computed tomography (CT) (left) and planar section of FDG-PET alone (right) demonstrates minimal tumor detection by the tracer and high uptake in high-metabolism tissues (i.e., heart, H and bladder, B). Panel B: Co-display of 89Zr-labeled 5B1 antibody (89Zr-5B1) PET images and CT images obtained from the same mice demonstrates excellent tumor detection of BxPC3-luc tumor xenografts. [Modes for carrying out the invention]
[0015] Detailed description of the invention Carbohydrates expressed on the surface of tumor cells may be targets for passive immunotherapy. The compositions provided herein contain, in at least part, sialyl-Lewis a -Keyhole Limpet Hemocyanin (sLe a -Based on the identification and characterization of human antibodies generated from blood lymphocytes of individuals immunized with the KLH conjugate vaccine. a At least four antibodies with high affinity for were identified (5B1, 9H3, 5H11, and 7E3). Two of these antibodies were expressed as recombinant antibodies (r5B1 and r7E3) and further characterized in in vitro and in vivo models. Both antibodies were potent in complement-dependent cell-mediated cytotoxicity (CDC) assays, and the 5B1 antibody was also highly active in antibody-dependent cell-mediated cytotoxicity assays. The in vivo efficacy of the antibodies was tested in two xenograft models using either Colo205 tumor cells or DMS-79 tumor cells implanted in severe combined immunodeficiency (SCID) mice. The validity of the technology transfer of the present invention provided herein is 2-fold. Firstly, by the method provided herein, sLe a- The antibody response elicited by the KLH vaccine demonstrates its usefulness as a vaccine in itself. Secondly, the most potent antibodies produced in clinical trials can be stored and ultimately used as therapeutic agents for the target cancer population, or in the production of therapeutic agents. The high affinity and high effector function of the antibodies provided herein support the potential of this technology transfer.
[0016] As used herein, the term “antibody” means a B cell polypeptide product that falls within the immunoglobulin class of polypeptides, capable of binding to a specific molecular antigen, consisting of a pair of two identical polypeptide chains, each pair having one heavy chain (approximately 50–70 kDa) and one light chain (approximately 25 kDa), with each amino-terminus of each chain containing a variable region of approximately 100–130 or more amino acids, and each carboxy-terminus of each chain containing a constant region (see Borrebaeck (ed.) (1995) Antibody Engineering, 2nd ed., Oxford University Press.; Kuby (1997) Immunology, 3rd ed., WH Freeman and Company, New York). With regard to the present invention, the specific molecular antigen to which the antibody of the present invention can bind is the target carbohydrate sLe a These are some examples.
[0017] The term "human," when used in reference to an antibody or its functional fragment, refers to an antibody or its functional fragment having a human variable region and / or a human constant region or part thereof that corresponds to a human germline immunoglobulin sequence. Such human germline immunoglobulin sequences are described by Kabat et al. (1991), Sequences of Proteins of Immunological Interest, 5th edition, US Department of Health and Human Services, NIH Publication No. 91-3242. Human antibodies, in relation to this invention, are sLe aThe antibodies may include those that bind to and encode nucleic acid sequences that are naturally occurring somatic variants of human germline immunoglobulin nucleic acid sequences. Typical methods for producing human antibodies are presented in Example I, but any method well known to those skilled in the art may be used.
[0018] The term "monoclonal antibody" refers to an antibody that is the product of a population of cells derived from a single-cell clone, hybridoma, or single cell. Monoclonal antibodies also refer to antibodies produced by recombinant methods from immunoglobulin genes encoding heavy and light chains, so as to produce a single-molecule immunoglobulin species. The amino acid sequences of antibodies in monoclonal antibody preparations are substantially homogeneous, and the binding activity of antibodies in such preparations exhibits substantially the same antigen-binding activity. In contrast, polyclonal antibodies are combinations of immunoglobulin molecules obtained from different B cells within a population that bind to specific antigens. Each immunoglobulin in a polyclonal antibody can bind to different epitopes of the same antigen. Methods for producing both monoclonal and polyclonal antibodies are well known in the art (Harlow and Lane, Antibodies: A Laboratory Manual, Cold Spring Harbor Laboratory Press (1989) and Borrebaeck (ed.), Antibody Engineering: A Practical Guide, WH Freeman and Co., Publishers, New York, pp. 103-120 (1991)).
[0019] As used herein, the term “functional fragment” means, when used in reference to an antibody, a portion of an antibody comprising a heavy or light chain polypeptide that retains some or all of the binding activity of the antibody from which the fragment originates. Examples of such functional fragments include Fd, Fv, Fab, F(ab'), F(ab)2, F(ab')2, single-chain Fv(scFv), diabody, triabody, tetrabody, and minibody. Other functional fragments include, for example, heavy or light chain polypeptides, variable region polypeptides, or CDR polypeptides or portions thereof, insofar as such functional fragments retain binding activity. Such antibody-binding fragments can be found, for example, in Harlow and Lane, Antibodies: A Laboratory Manual, Cold Spring Harbor Laboratory, New York (1989); Myers (ed.), Molec. Biology and Biotechnology: A Comprehensive Desk Reference, New York: VCH Publisher, Inc.; Huston et al., Cell Biophysics, Vol. 22: pp. 189-224 (1993); Plueckthun and Skerra, Meth. Enzymol., Vol. 178: pp. 497-515 (1989); and Day, ED, Advanced Immunochemistry, 2nd edition, Wiley-Liss, Inc., New York, NY (1990).
[0020] When used in relation to antibodies, the term "heavy chain" refers to a polypeptide chain of approximately 50–70 kDa, with a variable region of approximately 120–130 or more amino acids at the amino terminus and a constant region at the carboxy terminus. The constant region can be one of five distinct types, designated alpha (α), delta (δ), epsilon (ε), gamma (γ), and mu (μ), based on the amino acid sequence of the heavy chain constant region. These distinct heavy chains differ in size, with α, δ, and γ containing approximately 450 amino acids, and μ and ε containing approximately 550 amino acids. When these distinct types of heavy chains are combined with light chains, five well-known classes of antibodies are produced, including the four subclasses of IgG, namely IgG1, IgG2, IgG3, and IgG4: IgA, IgD, IgE, IgG, and IgM, respectively. The heavy chain can be a human heavy chain.
[0021] When used in relation to antibodies, the term "light chain" refers to a polypeptide chain of approximately 25 kDa, with a variable region of approximately 100 to 110 or more amino acids at the amino terminus and a constant region at the carboxy terminus. The approximate length of a light chain is 211 to 217 amino acids. Two distinct types exist, designated kappa (κ) or lambda (λ) based on the amino acid sequence of the constant domain. Light chain amino acid sequences are well known in the art. The light chain may be a human light chain.
[0022] The term "variable domain" or "variable region" generally refers to a portion of the light or heavy chain of an antibody, located at the amino terminus of the light or heavy chain, with a length of approximately 120–130 amino acids in the heavy chain and approximately 100–110 amino acids in the light chain, and used for the binding and specificity of each particular antibody to its specific antigen. Variable domains vary widely in sequence among different antibodies. Sequence variability is concentrated in the CDR, and less variable portions within the variable domain are called framework regions (FRs). The CDRs of the light and heavy chains are primarily involved in antibody-antigen interactions. The amino acid position numbering used herein follows the EU Index, as found in Kabat et al. (1991) Sequences of proteins of immunological interest. (US Department of Health and Human Services, Washington, DC), 5th edition. Variable regions may be human variable regions.
[0023] CDR refers to one of the three hypervariable regions (H1, H2, or H3) within the non-framework region of the immunoglobulin (Ig or antibody) VH β-sheet framework, or one of the three hypervariable regions (L1, L2, or L3) within the non-framework region of the antibody VL β-sheet framework. Therefore, a CDR is a variable region sequence scattered within the framework region sequence. CDR regions are well known to those skilled in the art, and are defined, for example, by Kabat as the most hypervariable region within the antibody variable (V) domain (Kabat et al., J. Biol. Chem. Vol. 252: pp. 6609-6616 (1977); Kabat, Adv. Prot. Chem. Vol. 32: pp. 1-75 (1978)). Furthermore, the CDR region sequence is structurally defined by Chothia as a residue that is not part of a conserved β-sheet framework and is therefore adaptable to different conformations (Chothia and Lesk, J. Mol. Biol. Vol. 196: pp. 901-917 (1987)). Both terminology are well recognized in the art. The location of the CDR within a standard antibody variable domain is determined by comparing numerous structures (Al-Lazikani et al., J. Mol. Biol. Vol. 273: pp. 927-948 (1997); Morea et al., Methods Vol. 20: pp. 267-279 (2000)). Since the number of residues in the hypervariable region varies between antibodies, the standard variable domain numbering scheme conventionally assigns numbers such as a, b, c, etc., next to the residue number for additional residues compared to the standard location (Al-Lazikani et al., above (1997)). Such nomenclature is also well known to those skilled in the art.
[0024] For example, CDRs defined according to either Kabat (hypervariable) or Chothia (structural) naming conventions are listed in Table 1 below.
[0025] [Table 1]
[0026] Immunoadhesins can also be created by incorporating one or more CDRs into a molecule via covalent or non-covalent bonds. The CDR(s) can be incorporated as part of a larger polypeptide chain, covalently linked to another polypeptide chain, or non-covalently. The CDR(s) enable the immunoadhesin to bind to a specific target antigen.
[0027] As used herein, the term “isolated” means, when used with respect to antibodies, antibody functional fragments, or polynucleotides, that the referenced molecule does not contain at least one component found in nature. This term includes antibodies, antibody functional fragments, or polynucleotides isolated from some or all of the other components found in their natural environment. Examples of components in the natural environment of antibodies include red blood cells, white blood cells, platelets, plasma, proteins, nucleic acids, salts, and nutrients. Examples of components in the natural environment of antibody functional fragments or polynucleotides include lipid membranes, organelles, proteins, nucleic acids, salts, and nutrients. The antibodies, antibody functional fragments, or polynucleotides of the present invention may also be free from or substantially free from all of these components or any other components of the cells from which they were isolated or produced by recombination.
[0028] As used herein, “isotype” refers to the antibody class encoded by a heavy chain constant region gene. The heavy chain of a given antibody or functional fragment determines its class, IgM, IgG, IgA, IgD, or IgE. Each class may have either a κ or λ light chain. The term “subclass” refers to a minor difference in the amino acid sequence of the heavy chain that distinguishes a subclass. In humans, there are two subclasses of IgA (subclasses IgA1 and IgA2) and four subclasses of IgG (subclasses IgG1, IgG2, IgG3, and IgG4). Such classes and subclasses are well known to those skilled in the art.
[0029] The terms “binds” or “binding,” as used herein, refer to intermolecular interactions that form a complex. These interactions may be non-covalent interactions, including, for example, hydrogen bonds, ionic bonds, hydrophobic interactions, and / or van der Waals interactions. Complexes may also include the binding of two or more molecules held together by covalent or non-covalent bonds, interactions, or forces. Binding of an antibody or its functional fragment can be detected using, for example, an enzyme-linked immunosorbent assay, as presented in Example I, or any one of several methods well known to those skilled in the art.
[0030] A single antigen-binding site on an antibody or functional fragment and sLe a The overall strength of non-covalent interactions between single epitopes of target molecules such as the antibody or functional fragment is the affinity of the antibody or functional fragment to that epitope. The association (k1) and dissociation (k1) of the antibody or functional fragment with the monovalent antigen. -1 The ratio of (k1 / k -1 ) is the association constant K, which is a measure of affinity. The value of K varies for different complexes of the antibody or functional fragment and the antigen, with k1 and k -1 It depends on both. The association constant K for the antibody or functional fragment of the present invention can be determined using any method provided herein or any other method well known to those skilled in the art.
[0031] Affinity at a single binding site does not necessarily reflect the true strength of the interaction between the antibody or functional fragment and the antigen. aWhen an antibody contains multiple binding sites and multiple repeat antigenicity determinants come into contact with it, the interaction between the antibody or functional fragment and the antigen at one site increases the probability of a reaction at a second site. The strength of these multiple interactions between a multivalent antibody and an antigen is called binding activity. The binding activity of an antibody or functional fragment can be a better measure of its binding ability than the affinity of its individual binding sites. For example, low affinity can be compensated for by high binding activity, as is sometimes found with pentameric IgM antibodies, which may have lower affinity than IgG but can effectively bind to the antigen due to the high binding activity of IgM resulting from its multivalency.
[0032] The specificity of an antibody or its functional fragment refers to the ability of an individual antibody or functional fragment to react with only one antigen. An antibody or functional fragment can be considered specific if it can distinguish between primary, secondary, or tertiary structural differences of an antigen or its isomer.
[0033] The term "polynucleotide" refers to a nucleotide in the form of a polymer of any length, either a deoxyribonucleotide or a ribonucleotide, or an analogue thereof. A polynucleotide sequence consists of four nucleotide bases: adenine (A); cytosine (C); guanine (G); thymine (T); and, if the polynucleotide is RNA, uracil (U) instead of thymine. Therefore, the terms "nucleotide sequence" or "nucleic acid sequence" are alphabetical representations of polynucleotides. Polynucleotides can include genes or gene fragments (e.g., probes, primers, EST or SAGE tags), exons, introns, messenger RNA (mRNA), transfer RNA, ribosomal RNA, ribozymes, cDNA, recombinant polynucleotides, branched polynucleotides, plasmids, vectors, isolated DNA of any sequence, isolated RNA of any sequence, nucleic acid probes, and primers. Polynucleotides also refer to both double-stranded and single-stranded molecules. Unless otherwise specified or required, any embodiment of the present invention that is a polynucleotide encompasses both the double-stranded form and each of the two complementary single-stranded forms that are known or predicted to constitute the double-stranded form. It is understood that the isolated polynucleotides and nucleic acids described herein are those that do not exist in nature. Examples of polynucleotides and nucleic acids that do not exist in nature include, but are not limited to, cDNA and chemically synthesized molecules.
[0034] The term “coding” as used in relation to polynucleotides, or its grammatical equivalent, refers to a polynucleotide that, in its native state or when manipulated by methods well known to those skilled in the art, can be transcribed to produce mRNA, which is then translated into polypeptides and / or fragments thereof. The antisense strand is the complement of such a polynucleotide, from which the coding sequence can be inferred.
[0035] The phrase "therapeutic agent" is sLe aThis refers to any agent that can be used to treat, manage, or improve diseases and / or symptoms associated with the manifestation of the present invention. In certain embodiments, the therapeutic agent refers to the antibody or functional fragment of the present invention. In other embodiments, the therapeutic agent refers to an agent other than the antibody or functional fragment of the present invention. The therapeutic agent is sLe a This may include drugs that are known to be useful, or have been used or are currently used for, treating, managing, or improving one or more symptoms associated with the manifestation of the disease and / or related thereto.
[0036] The term “diagnostic agent” refers to a substance administered to a subject that is useful in diagnosing a disease. Such a substance may be used to reveal, precisely indicate, and / or define the localization of a disease-causing process. In certain embodiments, the diagnostic agent includes a substance conjugated with an antibody or functional fragment of the present invention that is useful in diagnosing cancer or tumorigenesis when administered to a subject or in contact with a sample derived from the subject.
[0037] The phrase "detectable agent" refers to a substance that can be used to confirm the existence or presence of a desired molecule, such as the antibody or functional fragment of the present invention, in a sample or subject. The detectable agent may be a substance that can be visualized or otherwise determined and / or measured (e.g., by quantification).
[0038] An "effective dose" is the amount sufficient to produce a beneficial or desired result. An effective dose can be administered in one or more doses, topical application, or medication. Such delivery depends on several variables, including the duration of use of each individual dose, the bioavailability of the drug, and the route of administration.
[0039] When used herein, the phrase “therapeutic dose” refers to the amount of a therapeutic agent (e.g., an antibody or functional fragment provided herein or any other therapeutic agent provided herein) sufficient to reduce and / or improve the severity and / or duration of a given disease and / or associated symptoms. The therapeutic dose of a therapeutic agent may be the amount necessary to reduce or improve the advancement or progression of a given disease, to reduce or improve the recurrence, onset or onset of a given disease, and / or to improve or enhance the preventive or therapeutic effect of another therapy (e.g., a therapy other than administering an antibody or functional fragment provided herein).
[0040] "Sialil-Lewis" a (sLe a The compound ) is sialyl Le a It is also known as sialyl-Lewis A, sialylated Lewis a, and CA19.9, with molecular formula C 31 H 52 N2O 23 It is a tetrasaccharide with a molar mass of 820.74 g / mol. a The structure may include Neu5Acα2-3Galβ1-3(Fucα1-4)GlcNAcβ and Neu5Gcα2-3Galβ1-3(Fucα1-4)GlcNAcβ. a It is widely expressed on tumors of the gastrointestinal tract and is used as a tumor marker for pancreatic cancer and colon cancer. a It is also a known ligand for E-selection, which is also known as an endothelial leukocyte adhesion molecule (ELAM).
[0041] In some embodiments, the present invention relates to an isolated polynucleotide encoding an antibody heavy chain or light chain or a functional fragment thereof, wherein the antibody or functional fragment thereof produced using the antibody heavy chain or light chain is sLe aThe present invention provides isolated polynucleotides that bind to a VH domain. Accordingly, in some embodiments, the present invention provides isolated polynucleotides encoding an antibody or a functional fragment thereof, comprising a VH domain having an amino acid sequence selected from the group consisting of residues 20-142 of SEQ ID NO: 2, residues 20-142 of SEQ ID NO: 6, residues 20-142 of SEQ ID NO: 10, and residues 20-145 of SEQ ID NO: 14. The isolated polynucleotides of the present invention may also include nucleic acid sequences of residues 58-426 of SEQ ID NO: 1, residues 58-426 of SEQ ID NO: 5, residues 58-426 of SEQ ID NO: 9, or residues 58-435 of SEQ ID NO: 13, wherein the nucleic acid sequence encodes the VH domain of the antibody or a functional fragment thereof.
[0042] In another embodiment of the present invention, the isolated polynucleotide may encode an antibody or a functional fragment thereof, comprising a VL domain having an amino acid sequence selected from the group consisting of residues 20-130 of SEQ ID NO: 4, residues 20-129 of SEQ ID NO: 8, residues 20-130 of SEQ ID NO: 12, and residues 23-130 of SEQ ID NO: 16. The isolated polynucleotide of the present invention may also include nucleic acid sequences of residues 58-390 of SEQ ID NO: 3, residues 58-387 of SEQ ID NO: 7, residues 58-390 of SEQ ID NO: 11, or residues 67-390 of SEQ ID NO: 15, wherein the nucleic acid sequence encodes the VL domain of the antibody or a functional fragment thereof.
[0043] In another embodiment, the present invention provides isolated polynucleotides encoding antibody heavy chains or light chains or functional fragments thereof, wherein the antibody heavy chains or light chains or functional fragments encoded by the polynucleotides of the present invention have one or more complementarity-determining regions (CDRs) shown in Figures 1-8 or listed in Table 2. The antibody or functional fragment containing one or more CDRs is described herein as sLe a It can specifically bind to sLe. aSpecific binding to the antibody may include the specificity, affinity, and / or binding activity presented in Example I for any of the antibodies provided herein. In another embodiment, the polynucleotide-encoded antibody or functional fragment of the present invention may include the complement-dependent cytotoxicity (CDC) activity and / or antibody-dependent cytotoxicity (ADCC) activity of any one of the clonal isolates 5B1, 9H3, 5H11, or 7E3 described herein. Methods for evaluating the specificity, affinity, and / or binding activity of the antibody or functional fragment are well known in the art, and exemplary methods are provided herein.
[0044] [Table 2]
[0045] In some embodiments, the antibody or functional fragment of the present invention comprises fewer than six CDRs. In some embodiments, the antibody or functional fragment comprises one, two, three, four, or five CDRs selected from the group consisting of VH CDR1, VH CDR2, VH CDR3, VL CDR1, VL CDR2, and / or VL CDR3. In certain embodiments, the antibody or functional fragment comprises one, two, three, four, or five CDRs selected from the group consisting of VH CDR1, VH CDR2, VH CDR3, VL CDR1, VL CDR2, and / or VL CDR3 of the clonal isolate 5B1, 9H3, 5H11, or 7E3 described herein.
[0046] In some embodiments, the present invention provides isolated polynucleotides encoding antibodies or functional fragments thereof, comprising variable weight (VH) chain domains having the CDR1, CDR2, and CDR3 amino acid sequences of clone isolates 5B1, 9H3, 5H11, or 7E3. Such VH domains may comprise amino acid residues 55-62, 70-77, and 116-131 of SEQ ID NO: 2, or instead amino acid residues 45-52, 70-77, and 116-131 of SEQ ID NO: 6, or instead amino acid residues 45-52, 70-77, and 116-131 of SEQ ID NO: 10, or instead amino acid residues 45-52, 70-77, and 116-134 of SEQ ID NO: 14. In another embodiment, the nucleotide sequences encoding CDR1, CDR2, and CDR3 of the VH domain may each include the nucleotide sequences of residues 133-156, 208-231, and 346-393 of SEQ ID NO: 1, or instead the nucleotide sequences of residues 133-156, 208-231, and 346-393 of SEQ ID NO: 5, or instead the nucleotide sequences of residues 133-156, 208-231, and 346-393 of SEQ ID NO: 9, or instead the nucleotide sequences of residues 133-156, 208-231, and 346-402 of SEQ ID NO: 13.
[0047] In another embodiment, the present invention provides isolated polynucleotides encoding antibodies or functional fragments thereof, comprising variable light (VL) chain domains having the amino acid sequences of CDR1, CDR2, and CDR3 of clonal isolates 5B1, 9H3, 5H11, or 7E3. Such VL domains may comprise amino acid residues 45-52, 70-72, and 109-120 of SEQ ID NO: 4, or alternatively, amino acid residues 45-52, 70-72, and 109-119 of SEQ ID NO: 8, or alternatively, amino acid residues 45-52, 70-72, and 109-120 of SEQ ID NO: 12, or alternatively, amino acid residues 49-53, 72-74, and 111-120 of SEQ ID NO: 16. In another embodiment, the nucleotide sequences encoding CDR1, CDR2, and CDR3 of the VH domain may each include the nucleotide sequences of residues 133-156, 208-216, and 325-360 of SEQ ID NO: 3, or instead the nucleotide sequences of residues 133-156, 208-216, and 325-357 of SEQ ID NO: 7, or instead the nucleotide sequences of residues 134-156, 208-216, and 325-360 of SEQ ID NO: 11, or instead the nucleotide sequences of residues 145-162, 214-222, and 331-360 of SEQ ID NO: 15.
[0048] In another embodiment, the present invention provides variants of polynucleotides provided herein. When used in relation to polynucleotides, a variant includes a polynucleotide having one or more modified nucleotides, such as, for example, methylated nucleotides or nucleotide analogs, for example, but not limited to these. Furthermore, a variant polynucleotide may include a polynucleotide interposed with non-nucleotide components. Modifications to polynucleotides can be added before or after the assembly of polynucleotides using methods well known to those skilled in the art. For example, a polynucleotide can be modified after polymerization by conjugating it with a labeling component using either an enzymatic or chemical technique (as described, e.g., Gottfried and Weinhold, 2011, Biochem. Soc. Trans., vol. 39(2): pp. 523-628; Paredes et al., 2011, Methods, vol. 54(2): pp. 251-259).
[0049] Polynucleotides can be obtained and their nucleotide sequences determined by any method known in the art. Since the amino acid sequences of the variable heavy and light chain domains 5B1, 9H3, 5H11, and 7E3 are known (see, for example, SEQ ID NOs: 2, 4, 6, 8, 10, 12, 14, and 16), the nucleotide sequences encoding antibodies and modified forms of these antibodies can be determined using methods known in the art, that is, by assembling nucleotide codons known to encode specific amino acids to generate the nucleic acid encoding the antibody. Such antibody-encoding polynucleotides can be assembled from chemically synthesized oligonucleotides (for example, as described by Kutmeier et al., 1994, BioTechniques Vol. 17: p. 242), which, in short, involves synthesizing the duplicate oligonucleotide-containing portion of the sequence encoding the antibody, fragment, or variant thereof, performing annealing and ligation of these oligonucleotides, and then amplifying the ligated oligonucleotides by PCR.
[0050] The polynucleotides encoding the antibodies or functional fragments of the present invention can be generated using the nucleic acid sequences of the variable heavy chain domain and / or variable light chain domain of isolates 5B1, 9H3, 5H11, or 7E3 (e.g., SEQ ID NOs: 1, 3, 5, 7, 9, 11, 13, and 15). The nucleic acids encoding the antibodies or functional fragments can also be chemically synthesized or obtained from a suitable source (e.g., cDNA isolated from cells expressing the antibodies or functional fragments, such as hybridoma cells selected to express the antibodies or functional fragments) by PCR amplification using synthetic primers that can hybridize to the 3' and 5' ends of the sequence, or by cloning using oligonucleotide probes specific to a particular nucleic acid sequence. The amplified nucleic acids produced by PCR can then be cloned into a replicable cloning vector using any method known in the art.
[0051] In some embodiments, the present invention is sSle a The present invention provides an isolated antibody or a functional fragment thereof that binds to sLe. a The present invention provides an isolated antibody or functional fragment thereof that binds to a specific target, and which contains a VH domain having an amino acid sequence selected from the group consisting of residues 20-142 of SEQ ID NO: 2, residues 20-142 of SEQ ID NO: 6, residues 20-142 of SEQ ID NO: 10, and residues 20-145 of SEQ ID NO: 14.
[0052] In some embodiments, the present invention is sSle a The present invention provides an isolated antibody or functional fragment thereof that binds to a specific target, and which includes a VL domain having an amino acid sequence selected from the group consisting of residues 20-130 of SEQ ID NO: 4, residues 20-129 of SEQ ID NO: 8, residues 20-130 of SEQ ID NO: 12, and residues 23-130 of SEQ ID NO: 16.
[0053] In some embodiments, the present invention is sSle aThe present invention provides an isolated antibody or functional fragment thereof that binds to a target, comprising both a VH domain and a VL domain, wherein the VH domain and VL domain each contain an amino acid sequence selected from the group consisting of residues 20-142 of SEQ ID NO: 2 and 20-130 of SEQ ID NO: 4; residues 20-142 of SEQ ID NO: 6 and 20-129 of SEQ ID NO: 8; residues 20-142 of SEQ ID NO: 10 and 20-130 of SEQ ID NO: 12; and residues 20-145 of SEQ ID NO: 14 and 23-130 of SEQ ID NO: 16.
[0054] In some embodiments, sLe a To conjugate to the CDR, the antibody or functional fragment of the present invention has one or more of the CDRs shown in Figures 1-8 or listed in Table 2. The antibody or functional fragment containing one or more of the CDRs, in particular CDR3, is used as described herein. a It can specifically bind to sLe. a Specific binding to may include the specificity and affinity presented in Example I for any of the antibodies provided herein. In some embodiments, the antibody or functional fragment of the present invention may contain any one CDC activity and / or ADCC activity of the clonal isolates 5B1, 9H3, 5H11, or 7E3 described herein.
[0055] In some embodiments, the present invention provides isolated antibodies or functional fragments thereof comprising VH chain domains having the amino acid sequences of CDR1, CDR2, and CDR3 of clonal isolates 5B1, 9H3, 5H11, or 7E3. Such VH domains may comprise amino acid residues 55-62, 70-77, and 116-131 of SEQ ID NO: 2, or instead amino acid residues 45-52, 70-77, and 116-131 of SEQ ID NO: 6, or instead amino acid residues 45-52, 70-77, and 116-131 of SEQ ID NO: 10, or instead amino acid residues 45-52, 70-77, and 116-134 of SEQ ID NO: 14.
[0056] In some embodiments, the present invention provides isolated antibodies or functional fragments thereof comprising VL chain domains having the amino acid sequences of CDR1, CDR2, and CDR3 of clonal isolates 5B1, 9H3, 5H11, or 7E3. Such VL domains may comprise amino acid residues 45-52, 70-72, and 109-120 of SEQ ID NO: 4, or alternatively, amino acid residues 45-52, 70-72, and 109-119 of SEQ ID NO: 8, or alternatively, amino acid residues 45-52, 70-72, and 109-120 of SEQ ID NO: 12, or alternatively, amino acid residues 49-53, 72-74, and 111-120 of SEQ ID NO: 16.
[0057] In some aspects of the present invention, the isolated antibody or its functional fragment is a monoclonal antibody. In some aspects of the present invention, the isolated antibody or its functional fragment provided herein is an IgG or IgM isotype. In further aspects of the present invention, the antibody or its functional fragment is an antibody of the IgG1 subclass.
[0058] In some embodiments, the antibody functional fragments of the present invention may be, but are not limited to, Fab, Fab', F(ab')2, Fabc, scFV, diabody, triabody, minibody, or single-domain antibody (sdAB). In some embodiments, the present invention provides a diabody comprising the amino acid sequence of SEQ ID NO: 18 or 20. Such a diabody of the present invention may, in some embodiments, be encoded by a polynucleotide having the nucleic acid sequence of SEQ ID NO: 17 or 19. With respect to antibodies and their functional fragments, various forms, modifications, and alterations are well known in the art. a Specific antibody fragments may include any of the various forms, modifications, and alterations of such antibodies. Examples of such various forms and terms known in the art are described below.
[0059] In some embodiments, the present invention provides a method for producing the antibody or functional fragment thereof. The method may include the steps of introducing the polynucleotide of the present invention into a host cell, culturing the host cell for a sufficient period of time under conditions that cause it to produce the heavy chain and / or light chain encoding the antibody or functional fragment of the present invention, and purifying the heavy chain and / or light chain of the antibody or functional fragment.
[0060] sLe a Recombinant expression of the antibody or functional fragment of the present invention that binds to an antigen may involve constructing an expression vector containing a polynucleotide encoding the heavy chain and / or light chain of the antibody or functional fragment of the present invention. Once a polynucleotide encoding the antibody or functional fragment of the present invention (preferably containing, but not necessarily containing, a heavy chain variable domain and / or a light chain variable domain) is obtained, a vector for producing the antibody or functional fragment can be prepared by recombinant DNA technology using techniques well known in the art. Methods for preparing proteins by expressing a polynucleotide containing a nucleotide sequence encoding the antibody or functional fragment are described herein.
[0061] Expression vectors containing the coding sequence of an antibody or its functional fragment, as well as appropriate transcription and translational control signals, can be constructed using methods well known to those skilled in the art. These methods include, for example, recombinant DNA techniques and synthetic methods in vitro, and genetic recombination in vivo. Accordingly, the present invention provides a replicable vector comprising a nucleotide sequence encoding the antibody or its functional fragment, operably ligated to a promoter. Such a vector may contain a nucleotide sequence encoding the constant region of the antibody molecule (see, for example, International Publications WO86 / 05807 and WO89 / 01036; and U.S. Patent No. 5,122,464), and the variable domain of the antibody can be cloned into such a vector to express the entire heavy chain, the entire light chain, or both the entire heavy chain and the entire light chain.
[0062] The expression vector can be transferred into host cells using conventional techniques, and the transfected cells are then cultured using conventional techniques to produce the antibody or functional fragment of the present invention. Therefore, the present invention encompasses host cells containing polynucleotides encoding the antibody or functional fragment of the present invention, operably linked to a heterologous promoter. In some embodiments relating to the expression of double-chain antibodies, vectors encoding both the heavy and light chains can be co-expressed in host cells to express the entire immunoglobulin molecule, as detailed below.
[0063] Various host-expression vector systems can be used to express the antibody or functional fragment of the present invention (see, for example, U.S. Patent No. 5,807,715). Such host-expression systems mean vehicles that can produce and subsequently purify the desired coding sequence, but also mean cells that, upon transformation or transfect with a suitable nucleotide coding sequence, can express the antibody molecule of the present invention in situ. These include, but are not limited to, bacteria (e.g., E. coli and B. subtilis) transformed with recombinant bacteriophage DNA, plasmid DNA, or cosmid DNA expression vectors containing antibody coding sequences; microorganisms such as yeast (e.g., Saccharomyces Pichia) transformed with recombinant yeast expression vectors containing antibody coding sequences; insect cell lines infected with recombinant virus expression vectors containing antibody coding sequences (e.g., baculovirus); plant cell lines infected with recombinant virus expression vectors (e.g., cauliflower mosaic virus, CaMV; tobacco mosaic virus, TMV) or transformed with recombinant plasmid expression vectors containing antibody coding sequences (e.g., Ti plasmid); or mammalian cell lines (e.g., COS, CHO, BHK, 293, NS0, and 3T3 cells) having recombinant expression constructs containing promoters derived from mammalian cell genomes (e.g., metallothionein promoter) or promoters derived from mammalian viruses (e.g., adenovirus late promoter; vaccinia virus 7.5K promoter). In some embodiments, bacterial cells such as Escherichia coli, or eukaryotic cells, are used to express recombinant antibodies or functional fragments, particularly to express the entire recombinant antibody. For example, mammalian cells such as Chinese hamster ovary cells (CHO), in combination with vectors such as major intermediate early gene promoter elements derived from human cytomegalovirus, are effective antibody expression systems (Foecking et al., 1986, Gene 45:101; and Cockett et al., 1990, Bio / Technology 8:2).In some embodiments, the antibody or fragment of the present invention is produced in CHO cells. In one embodiment, sLe. a The expression of the nucleotide sequence encoding the antibody of the present invention or its functional fragment that binds to the antibody is regulated by a constitutive promoter, an inducible promoter, or a tissue-specific promoter.
[0064] In bacterial systems, several expression vectors can be advantageously selected depending on the intended use of the antibody molecule to be expressed. For example, when producing large quantities of such antibodies to create pharmaceutical compositions of antibody molecules, a vector that leads to the expression of a high level of fusion protein product that can be easily purified may be desirable. Such vectors include, but are not limited to, the E. coli expression vector pUR278 (Ruther et al., 1983, EMBO Vol. 12: p. 1791), in which the antibody coding sequence can be individually ligated into the vector with the lac Z coding region and thus produce a fusion protein; and the pIN vector (Inouye & Inouye, 1985, Nucleic Acids Res. Vol. 13: pp. 3101-3109; Van Heeke & Schuster, 1989, J. Biol. Chem. Vol. 24: pp. 5503-5509). The pGEX vector can also be used to express an exogenous polypeptide as a fusion protein with glutathione 5-transferase (GST). Generally, such fusion proteins are soluble and can be readily purified from lysed cells by adsorption and binding to matrix glutathione agarose beads, followed by elution in the presence of free glutathione. pGEX vectors contain thrombin or factor Xa protease cleavage sites and are therefore designed to allow the cloned target gene product to be released from the GST portion.
[0065] In insects, the Autographa californica nuclear polyhedron disease virus (AcNPV) is used as a vector for expressing foreign genes. The virus grows in Spodoptera frugiperda cells. The coding sequences of antibodies or functional fragments can be individually cloned into non-essential regions of the virus (e.g., polyhedrin genes) and placed under the control of the AcNPV promoter (e.g., the polyhedrin promoter).
[0066] In mammalian host cells, several virus-based expression systems can be utilized. When using adenovirus as an expression vector, the desired antibody-coding sequence can be ligated to the adenovirus transcription / translation regulatory complex, e.g., the late promoter and tripartite reader sequences. This chimeric gene can then be inserted into the adenovirus genome by recombination in vitro or in vivo. Insertion into a non-essential region of the viral genome (e.g., the E1 or E3 region) results in a recombinant virus that is viable in an infected host and capable of expressing the antibody molecule (see, e.g., Logan & Shenk, 1984, Proc. Natl. Acad. Sci. USA vol. 81: pp. 355-359). Specific start signals can also be used for efficient translation of the inserted antibody-coding sequence. These signals include the ATG start codon and adjacent sequences. Furthermore, to ensure translation of the entire inserted fragment, the start codon must be homeophase with the reading frame of the desired coding sequence. These exogenous translation regulatory signals and start codons may be of various origins, whether natural or synthetic. Expression efficiency can be enhanced by including appropriate transcriptional enhancer elements, transcriptional terminators, etc. (see, for example, Bittner et al., 1987, Methods in Enzymol. Vol. 153: pp. 51-544).
[0067] Furthermore, host cell lines can be selected that regulate the expression of the inserted sequence or modify and process the gene product in a desired specific manner. Such modifications (e.g., glycosylation) and processing (e.g., cleavage) of protein products may be important for the function of antibodies or functional fragments. Different host cells have characteristic and specific mechanisms with respect to post-translational processing and modification of proteins and gene products. Appropriate cell lines or host systems can be selected to ensure the precise modification and processing of the foreign protein to be expressed. For this purpose, eukaryotic host cells with cellular mechanisms for appropriate processing of primary transcripts, glycosylation of gene products, and phosphorylation can be used. Examples of such mammalian host cells include, but are not limited to, CHO cells, VERY cells, BHK cells, HeLa cells, COS cells, MDCK cells, 293 cells, 3T3 cells, W138 cells, BT483 cells, Hs578T cells, HTB2 cells, BT2O cells and T47D cells, NS0 (a mouse myeloma cell lineage that does not endogenously produce any immunoglobulin chains) cells, CRL7O3O cells and HsS78Bst cells.
[0068] High yield production and stable expression of recombinant proteins over long periods are desirable. For example, cell lines that stably express the antibody or functional fragment of the present invention can be engineered. Instead of using an expression vector containing a viral replication origin, host cells can be transformed using DNA controlled by appropriate expression regulatory elements (e.g., promoters, enhancers, sequences, transcription terminators, polyadenylation sites, etc.) and a selection marker. After introducing the foreign DNA, the engineered cells can be grown in nutrient-enhanced medium for 1-2 days, and then switched to a selection medium. The selection marker in the recombinant plasmid confers resistance to selection, allowing the cells to stably incorporate the plasmid into their chromosomes, grow, and form nests, which can then be cloned and expanded to form a cell line. This method can be advantageously used to engineer cell lines that express antibody molecules.
[0069] While not limited to these, several select systems can be used, including the herpes simplex virus thymidine kinase gene (Wigler et al., 1977, Cell 11: p. 223), the hypoxanthine guanine phosphoribosyltransferase gene (Szybalska & Szybalski, 1992, Proc. Natl. Acad. Sci. USA 48: p. 202), and the adenine phosphoribosyltransferase gene (Lowy et al., 1980, Cell 22: pp. 8-17), which can be used in tk-, hgprt-, or aprt- cells, respectively. Furthermore, antimetabolite resistance can be used as a basis for selection for the following genes: dhfr, which confers resistance to methotrexate (Wigler et al., 1980, Proc. Natl. Acad. Sci. US A. Vol. 77 (No. 6): pp. 3567-3570; O'Hare et al., 1981, Proc. Natl. Acad. Sci. USA Vol. 78: p. 1527); glutamine synthetase (GS), an enzyme involved in glutamine biosynthesis using glutamic acid and ammonia (Bebbington et al., 1992, Biotechnology Vol. 10: p. 169); and gpt, which confers resistance to mycophenolic acid (Mulligan & Berg, 1981, Proc. Natl. Acad. Sci. USA). 78:2072); neo (Wu and Wu, 1991, Biotherapy Vol. 3:87-95; Tolstoshev, 1993, Ann. Rev. Pharmacol. Toxicol. Vol. 32:573-596; Mulligan, 1993, Science Vol. 260:926-932; and Morgan and Anderson, 1993, Ann. Rev. Biochem. Vol. 62:191-217; May 1993, TIB TECH Vol. 11 (No. 5):155-215); and hygro (Santerre et al., 1984, Gene Vol. 30:147) which confers resistance to aminoglycoside G-418.To select a desired recombinant clone, methods well known in the field of recombinant DNA technology can be conventionally applied, such methods are described, for example, in Ausubel et al. (eds.), Current Protocols in Molecular Biology, John Wiley & Sons, NY (1993); Kriegler, Gene Transfer and Expression, A Laboratory Manual, Stockton Press, NY (1990); and Dracopoli et al. (eds.), Current Protocols in Human Genetics, Chapters 12 and 13, John Wiley & Sons, NY (1994); and Colberre-Garapin et al., 1981, J. Mol. Biol. Vol. 150: p. 1.
[0070] The expression level of antibody molecules can be increased by vector amplification (see Bebbington and Hentschel, *The use of vectors based on gene amplification for the expression of cloned genes in mammalian cells*, *DNA cloning*, Vol. 3 (Academic Press, New York, 1987) for a review). If a marker in a vector system expressing an antibody or its functional fragment is amplified, an increase in the level of the inhibitor present in the host cell culture increases the copy number of the marker gene. Since the amplified region is related to the antibody gene, antibody production also increases (Crouse et al., 1983, *Mol. Cell. Biol.*, Vol. 3: p. 257).
[0071] Host cells can be simultaneously transfected with the two expression vectors of the present invention: a first vector encoding a heavy chain polypeptide and a second vector encoding a light chain polypeptide. The two vectors may contain identical selection markers that enable equivalent expression of the heavy chain polypeptide and the light chain polypeptide. Alternatively, a single vector can be used that encodes and expresses both the heavy chain polypeptide and the light chain polypeptide. In such a situation, the light chain can be placed before the heavy chain to avoid an excess of toxic free heavy chain (Proudfoot, 1986, Nature 322:52; and Kohler, 1980, Proc. Natl. Acad. Sci. USA 77:2197-2199). The coding sequences for the heavy chain and light chain may include cDNA or genomic DNA.
[0072] Furthermore, the polynucleotides encoding the heavy and / or light chains of the antibody or functional fragment of the present invention can be subjected to codon optimization using techniques well known in the art to achieve optimized expression of the antibody or functional fragment of the present invention in desired host cells. For example, one method of codon optimization involves substituting native codons with the most frequent codons derived from a reference gene set, designed to increase the rate of codon translation for each amino acid. Additional exemplary methods for generating codon-optimized polynucleotides for expressing a desired protein, which can be applied to the heavy and / or light chains of the antibody or functional fragment of the present invention, are described in Kanaya et al., Gene, vol. 238: pp. 143-155 (1999), Wang et al., Mol. Biol. Evol., vol. 18 (no. 5): pp. 792-800 (2001), U.S. Patent No. 5,795,737, U.S. Patent Publication No. 2008 / 0076161 and WO2008 / 000632.
[0073] Once the antibody molecule of the present invention is produced by recombinant expression, it can be purified by any method known in the art for purifying immunoglobulin molecules, for example, by chromatography (e.g., ion exchange chromatography, affinity chromatography, affinity chromatography after protein A chromatography, and sizing column chromatography, particularly for specific antigens), centrifugation, differential solubility, or any other standard technique for protein purification. Furthermore, the antibody or functional fragment of the present invention can be fused with heterologous polypeptide sequences provided herein or otherwise known in the art to facilitate purification. For example, the antibody or functional fragment of the present invention can be purified by recombinant addition of commercially available polyhistidine tags (His tags), FLAG tags, hemagglutinin tags (HA tags), or myc- tags, and by utilizing purification methods well known to those skilled in the art.
[0074] A Fab fragment refers to a monovalent fragment consisting of VL, VH, CL, and CH1 domains; an F(ab')2 fragment is a bivalent fragment containing two Fab fragments linked by disulfide crosslinks in the hinge region; an Fd fragment consists of VH and CH1 domains; an Fv fragment consists of the VL and VH domains of a single arm of the antibody; and a dAb fragment (Ward et al., Nature Vol. 341: pp. 544-546, (1989)) consists of a VH domain.
[0075] An antibody may have one or more binding sites. If two or more binding sites are present, they may be identical or different. For example, naturally occurring immunoglobulins have two identical binding sites, single-chain antibodies or Fab fragments have one binding site, while "bispecific" or "bifunctional" antibodies have two different binding sites.
[0076] A single-chain antibody (scFv) refers to an antibody in which the VL region and VH region are linked by a linker (e.g., a synthetic sequence of amino acid residues) to form a continuous polypeptide chain. The linker is long enough to allow the protein chain to fold and a monovalent antigen-binding site to be formed (see, for example, Bird et al., Science Vol. 242: pp. 423-426 (1988) and Huston et al., Proc. Natl. Acad. Sci. USA Vol. 85: pp. 5879-5883 (1988)). A diabody refers to a bivalent antibody containing two polypeptide chains, each containing a VH domain and a VL domain linked by a linker. The linker is too short to allow pairing between two domains on the same chain, and therefore allows each domain to pair with a complementary domain on another polypeptide chain (see, for example, Holliger et al., Proc. Natl. Acad. Sci. USA vol. 90: pp. 6444-6448 (1993), and Poljak et al., Structure vol. 2: pp. 1121-1123 (1994)). If the two polypeptide chains of a diabody are identical, the resulting diabody will have two identical antigen-binding sites. Diabodies with two different antigen-binding sites can be created using polypeptide chains with different sequences. Similarly, tribody and tetrabody antibodies are antibodies that contain three and four polypeptide chains, respectively, and form three and four antigen-binding sites, which may be the same or different.
[0077] bracket, sLe aThe present invention also provides antibodies or functional fragments thereof that are derivatives of 5B1, 9H3, 5H11, and / or 7E3 that bind to the original molecule. Standard techniques well known to those skilled in the art can be used to introduce mutations into the nucleotide sequences encoding the antibodies or functional fragments thereof, including, for example, site-directed mutagenesis and PCR-mediated mutagenesis resulting in amino acid substitutions. In some embodiments, the derivatives include fewer than 25 amino acid substitutions, fewer than 20 amino acid substitutions, fewer than 15 amino acid substitutions, fewer than 10 amino acid substitutions, fewer than 5 amino acid substitutions, fewer than 4 amino acid substitutions, fewer than 3 amino acid substitutions, or fewer than 2 amino acid substitutions compared to the original molecule.
[0078] In some embodiments, the present invention provides antibodies or functional fragments having modified forms of naturally occurring amino acids, conservative substitutions, non-naturally occurring amino acids, amino acid analogs, and mimics, insofar as such antibodies or functional fragments retain the functional activity as defined herein. In one embodiment, a derivative has a conservative amino acid substitution made at one or more predicted non-essential amino acid residues. A conservative amino acid substitution is one in which an amino acid residue is replaced by an amino acid residue having a side chain with a similar charge. Families of amino acid residues having side chains with similar charges are defined in the Art. These families include amino acids with basic side chains (e.g., lysine, arginine, histidine), amino acids with acidic side chains (e.g., aspartic acid, glutamic acid), amino acids with uncharged polar side chains (e.g., glycine, asparagine, glutamine, serine, threonine, tyrosine, cysteine), amino acids with nonpolar side chains (e.g., alanine, valine, leucine, isoleucine, proline, phenylalanine, methionine, tryptophan), amino acids with beta-branched side chains (e.g., threonine, valine, isoleucine), and amino acids with aromatic side chains (e.g., tyrosine, phenylalanine, tryptophan, histidine). Alternatively, mutations can be randomly introduced through all or part of the coding sequence by saturated mutagenesis, and the resulting mutants can be screened for biological activity to identify mutants that retain activity. After mutagenesis, the encoded antibody or its functional fragment can be expressed, and the activity of the antibody or functional fragment can be determined.
[0079] In some embodiments, the present invention provides antibodies or functional fragments in which the fucosylation, galactosylation, and / or sialylation of an Fc fragment contained within the antibody or functional fragment of the present invention have been modified. As discussed in Peipp et al., Blood, Vol. 112 (No. 6): pp. 2390-2399 (2008), such modification of the Fc fragment can result in Fc receptor-mediated activity. For example, therapeutic antibodies produced by glycotechnology lacking core fucose residues derived from Fc N-glycan exhibit potent ADCC at lower concentrations and are far more effective than their fucosylated counterparts. Shields et al., J. Biol. Chem., Vol. 277 (No. 30): pp. 26733-40 (2002); Okazaki et al., J Mol Biol., Vol. 336: pp. 1239-1249 (2004); Natsume et al., J. Immunol. Methods., Vol. 306: pp. 93-103 (2005). Methods for modifying the fucosylation, galactosylation, and / or sialylation of antibodies with respect to their functional fragments are well known in the art. For example, defucosylation techniques can be grouped into three methodologies, as described in Yamane-Ohnuki et al., MAbs., Vol. 1 (No. 3): pp. 230-236 (2009): (1) conversion of the N-glycosylation pathway of non-mammalian cells to a "humanized" defucosylation pathway; (2) inactivation of the N-glycan-fucosylation pathway of mammalian cells; and (3) in vitro chemosynthesis of defucosylated N-glycoproteins or enzymatic modification from N-glycans to defucosylated forms. It is understood that antibodies or functional fragments of which have been modified by fucosylation, galactosylation, and / or sialylation can be produced using any one of these methods or any other method known in the art.
[0080] sLe aThe antibody or functional fragment of the present invention that binds to the antibody can be prepared by any method known in the art for synthesizing the antibody, particularly by chemical synthesis or by recombinant expression techniques. Unless otherwise specified, the implementation of the present invention utilizes conventional techniques of molecular biology, microbiology, genetic analysis, recombinant DNA, organic chemistry, biochemistry, PCR, oligonucleotide synthesis and modification, nucleic acid hybridization, and related fields within the scope of the art. These techniques are described and fully explained in the references cited herein. For example, Maniatis et al. (1982), each of which is incorporated herein by reference in its entirety. Molecular Cloning: A Laboratory Manual Cold Spring Harbor Laboratory Press; Sambrook et al. (1989), Molecular Cloning: A Laboratory Manual 2nd edition, Cold Spring Harbor Laboratory Press; Sambrook et al. (2001) Molecular Cloning: A Laboratory Manual , Cold Spring Harbor Laboratory Press, Cold Spring Harbor, NY; Ausubel et al. Current Protocols in Molecular Biology John Wiley & Sons (1987 and annual updates); Current Protocols in Immunology John Wiley & Sons (1987 and annual updates), Gait (ed.) (1984) Oligonucleotide Synthesis: A Practical Approach , IRL Press; Eckstein (ed.) (1991) Oligonucleotides and Analogues: A Practical Approach IRL Press; Birren et al. (eds.) (1999) Genome Analysis: A Laboratory Manual , Cold Spring Harbor Laboratory Press; Borrebaeck (ed.) (1995) Antibody Engineering , 2nd edition, Oxford University Press; Lo (ed.) (2006) Antibody Engineering: Methods and Protocols (Methods in Molecular Biology); see Volume 248, Humana Press, Inc.
[0081] Monoclonal antibodies can be prepared using a wide variety of techniques known in the art, including the use of hybridoma and recombinant technologies, or combinations thereof. For example, monoclonal antibodies can be prepared using hybridoma techniques, including those taught in Harlow et al., Antibodies: A Laboratory Manual (Cold Spring Harbor Laboratory Press, 2nd edition, 1988), each of which is incorporated herein by reference in its entirety; and Hammerling et al., Monoclonal Antibodies and T-Cell Hybridomas, pp. 563–681 (Elsevier, NY, 1981). Monoclonal antibodies are not limited to antibodies prepared by hybridoma techniques. Other exemplary methods for preparing monoclonal antibodies are known in the art. Additional exemplary methods for preparing monoclonal antibodies are presented in Example I herein.
[0082] sLe a The antibody functional fragments that bind to the immunoglobulin can be produced by any technique well known to those skilled in the art. For example, the Fab and F(ab')2 fragments of the present invention can be produced by proteolytic cleavage of immunoglobulin molecules using enzymes such as papain (for producing the Fab fragment) or pepsin (for producing the F(ab')2 fragment). The F(ab')2 fragment contains a variable region of the heavy chain, a constant region of the light chain, and a CH1 domain.
[0083] The antibody functional fragments of the present invention can also be generated using various phage display methods known in the art. For example, in a phage display method, a functional antibody domain, such as a heavy chain variable region and / or light chain variable region having one, two, three, four, five, or six CDRs provided herein, is displayed on the surface of a phage particle having an encoding polynucleotide sequence. The DNA encoding the VH and VL domains is recombined with an scFv linker by PCR and cloned into a phagemide vector. The vector is introduced into E. coli by electroporation, and the E. coli is infected with a helper phage. The phages used in these methods are typically filamentous phages including fd and M13, and the VH and VL domains are usually fused by recombination with either phage gene III or gene VIII. aPhages that express antigen-binding domains that bind to specific antigens can be selected or identified using antigens, for example, labeled antigens or antigens bound to or captured on solid surfaces or beads. Examples of phage display methods that can be used to produce the antibody functional fragments of the present invention include, each incorporated herein by reference in its entirety: Brinkman et al., 1995, J. Immunol. Methods, Vol. 182: pp. 41-50; Ames et al., 1995, J. Immunol. Methods, Vol. 184: pp. 177-186; Kettleborough et al., 1994, Eur. J. Immunol., Vol. 24: pp. 952-958; Persic et al., 1997, Gene, Vol. 187: pp. 9-18; Burton et al., 1994, Advances in Immunology, Vol. 57: pp. 191-280; PCT application PCT / GB91 / 01134; International publications WO 90 / 02809, WO 91 / 10737, WO Issues 92 / 01047, WO 92 / 18619, WO 93 / 11236, WO 95 / 15982, WO Examples include those disclosed in U.S. Patent Nos. 95 / 20401 and WO97 / 13844; and U.S. Patent Nos. 5,698,426, 5,223,409, 5,403,484, 5,580,717, 5,427,908, 5,750,753, 5,821,047, 5,571,698, 5,427,908, 5,516,637, 5,780,225, 5,658,727, 5,733,743 and 5,969,108.
[0084] As described in the references above, after phage selection, the antibody-coding region derived from the phage can be isolated and used to generate a whole antibody, including human antibodies, or any other desired antigen-binding fragment, which can then be expressed in any desired host, including, for example, mammalian cells, insect cells, plant cells, yeast, and bacteria as described herein.
[0085] Techniques for recombinantly producing Fab, Fab', and F(ab')2 fragments can also be utilized using methods known in the art, such as those disclosed in PCT Publication WO92 / 22324; Mullinax et al., 1992, BioTechniques Vol. 12 (No. 6): pp. 864-869; Sawai et al., 1995, AJRI Vol. 34: pp. 26-34; and Better et al., 1988, Science Vol. 240: pp. 1041-1043, each of which is incorporated by reference.
[0086] To generate the full antibody, the VH or VL sequence can be amplified in the scFv clone using PCR primers containing the VH or VL nucleotide sequence, a restriction site, and a flanking sequence to protect the restriction site. Using cloning techniques well known to those skilled in the art, the PCR-amplified VH domain can be cloned into a vector expressing the VH constant region, e.g., the human gamma-1 constant region, and the PCR-amplified VL domain can be cloned into a vector expressing the VL constant region, e.g., the human kappa or lambda constant region. The VH and VL domains can also be cloned into a single vector expressing the required constant region. The heavy-chain and light-chain conversion vectors are then co-transfected into cell lines using techniques well known to those skilled in the art to generate stable or transient cell lines expressing the full-length antibody, e.g., IgG.
[0087] In some embodiments, the antibody or functional fragment of the present invention is conjugated (covalent or noncovalent conjugation) or fused by recombination with one or more diagnostic agents, detectable agents, or therapeutic agents or any other desired molecule. The conjugated or recombinally fused antibody or functional fragment is used as part of a clinical trial procedure, such as determining the efficacy of a particular therapy. a It may be useful for monitoring or diagnosing the onset, development, progression, and / or severity of diseases associated with the manifestation of such phenomena, such as cancer or tumorigenesis.
[0088] Detection and diagnosis can be carried out, for example, using the antibodies or functional fragments of the present invention together with radioactive materials such as, but not limited to, zirconium ( 89 Zr), iodine ( 131 I, 125 I, 124 I, 123 I, and 121 I), carbon ( 14 C, 11 C), sulfur ( 35 S), tritium ( 3 H), indium ( 115 In, 113 In, 112 In, and 111 In), technetium ( 99 Tc), thallium ( 201 Ti), gallium ( 68 Ga, 67 Ga), palladium ( 103 Pd), molybdenum ( 99 Mo), xenon ( 133 Xe), fluorine ( 18 F), 15 O, 13 N, 64 Cu, 94m Tc, 153 Sm, 177 Lu, 159 Gd, 149 Pm, 140 La, 175 Yb, 166 Ho, 86 Y, 90 Y, 47 Sc, 186 Re, 188 Re, 142 Pr, <000009This can be achieved by coupling detectable substances, including Sn, positron-emitting metals, various enzymes such as horseradish peroxidase, alkaline phosphatase, beta-galactosidase, or acetylcholinesterase, using various positron emission tomography techniques; prosthetic groups such as streptavidin / biotin and avidin / biotin; fluorescent materials such as umbelliferone, fluorescein, fluorescein isothiocyanate, rhodamine, dichlorotriazinylamine fluorescein, dansilchloride, or phycoerythrin; luminescent materials such as luminol; bioluminescent materials such as luciferase, luciferin, and aequorin, as well as non-radioactive paramagnetic metal ions.
[0089] The present invention further encompasses the therapeutic use of antibodies or functional fragments of the present invention that are conjugated (conjugated by covalent or non-covalent bonds) or fused by recombination with one or more therapeutic agents. In this case, for example, an antibody may be conjugated or fused by recombination with a therapeutic agent such as a cytotoxin, e.g., a cell proliferation inhibitor or cell disruptor, or a radioactive metal ion, e.g., an alpha-emitter. Cytotoxic or cytotoxic agents include any agent that is harmful to cells. Therapeutic agents include chemotherapeutic drugs, such as, but not limited to, anthracyclines (e.g., doxorubicin and daunorubicin (formerly daunomycin)); taxanes (e.g., paclitaxel (Taxol) and docetaxel (Taxotele)); antimetabolites (e.g., methotrexate, 6-mercaptopurine, 6-thioguanine, cytarabine, 5-fluorouracil and decarbazine); or alkylating agents (e.g., mechloretamine, thioepa, chlorambucil, melphalan, carmustine (BCNU), lomustine (CCNU), cyclophosphamide, busulfan, dibromomannitol, streptozotocin, mitomycin C, cis) Dichlorodiamine platinum(II) (DDP) and cisplatin; antibiotics (e.g., actinomycin D, bleomycin, mitramycin, and anthramycin (AMC)); auristatin molecules (e.g., auristatin PHE, bryostatin 1, solastatin 10, monomethyl auristatin E (MMAE), and monomethyl auristatin F (MMAF)); hormones (e.g., glucocorticoids, progestins, androgens, and estrogens); nucleoside analogs (e.g., gemcitabine), DNA repair enzyme inhibitors (e.g., etoposide and topotecan), kinase inhibitors (e.g., Gleevec or compound ST1571, also known as imatinib mesylate);Cytotoxic agents (e.g., mytansine, paclitaxel, cytochalasin B, gramicidin D, ethidium bromide, emetine, mitomycin, etoposide, tenoposide, vincristine, vinblastine, colchicine, doxorubicin, daunorubicin, dihydroxyanthracine dione, mitoxantrone, mitramycin, 1-dehydrotestosterone, glucocorticoids, procaine, tetracaine, lidocaine, propranolol, puromycin and its analogs or homologs, as well as U.S. Patent No. 6,245,759, No. 6,399, No. 633, No. 6,383,790, No. 6,335,156, No. 6,271,242, No. 6,242,196, No. 6,218,4 No. 10, No. 6,218,372, No. 6,057,300, No. 6,034,053, No. 5,985,877, No. 5,958,76 Compounds disclosed in No. 9, No. 5,925,376, No. 5,922,844, No. 5,911,995, No. 5,872,223, No. 5,863,904, No. 5,840,745, No. 5,728,868, No. 5,648,239, and No. 5,587,459);Farnesyltransferase inhibitors (e.g., R115777, BMS-214662, and, for example, U.S. Patent Nos. 6,458,935, 6,451,812, 6,440,974, 6,436,960, 6,432,959, 6,420,387, 6,414,145, 6,410,541, 6,410,539, 6,403,581, 6,399,615, 6,387,905, 6,37) No. 2,747, No. 6,369,034, No. 6,362,188, No. 6,342,765, No. 6,342,487, No. 6,300,501, No. 6,268,363, No. 6,265,422, No. 6,248,75 6, 6,239,140, 6,232,338, 6,228,865, 6,228,856, 6,225,322, 6,218,406, 6,211,193, 6,187,786, No. 6,169,096, No. 6,159,984, No. 6,143,766, No. 6,133,303, No. 6,127,366, No. 6,124,465, No. 6,124,295, No. 6,103,723, No. 6,0 No. 93,737, No. 6,090,948, No. 6,080,870, No. 6,077,853, No. 6,071,935, No. 6,066,738, No. 6,063,930, No. 6,054,466, No. 6,051,5 Disclosed by Patent Nos. 82, 6,051, 574, and 6,040, 305); topoisomerase inhibitors (e.g., camptothecin, irinotecan, SN-38, topotecan, 9-aminocamptothecin, GG-211 (GI147211), DX-8951f, IST-622, rubitecan, pyrazoloacridine, XR-5000, saintopin, UCE6, UCE1022, TAN-1518A, TAN 1518B, KT6006, KT6528, ED-110, NB-506, ED-110, NB-506, fagaronine, coralyne, beta-rapacone, and rebeccamycin);DNA accessory groove binding agents (e.g., Hoechst dye 33342 and Hoechst dye 33258); adenosine deaminase inhibitors (e.g., fludarabine phosphate and 2-chlorodeoxyadenosine); or pharmaceutically acceptable salts, solvates, clathrates, or prodrugs thereof. The therapeutic agent may be an immunotherapy agent such as, for example, but not limited to, cetuximab, bevacizumab, heceptin, or rituximab.
[0090] Furthermore, the antibody or functional fragment of the present invention may contain, for example, radioactive metal ions, for example, 213 Alpha-emitters such as Bi, etc., or not limited to these, 131 In, 131 LU, 131 Y, 131 Ho, 131 Macrocyclic chelating agents useful for conjugating radioactive metal ions, including Sm; or, they can be conjugated with therapeutic agents such as 1,4,7,10-tetraazacyclododecane-N,N',N'',N'''-tetraacetic acid (DOTA), which can be attached to antibodies or functional fragments by a linker molecule. Such linker molecules are generally known in the art and are described by Denardo et al., 1998, Clin Cancer Res. Vol. 4 (No. 10): pp. 2483-2490; Peterson et al., 1999, Bioconjug. Chem. Vol. 10 (No. 4): pp. 553-2457; and Zimmerman et al., 1999, Nucl. Med. Biol. Vol. 26 (No. 8): pp. 943-2450.
[0091] Furthermore, the antibodies or functional fragments of the present invention can be conjugated (conjugated by covalent or non-covalent bonds) or fused by recombination with therapeutic agents that modify a given biological response. Therefore, the therapeutic agent should not be interpreted as being limited to classical chemical therapeutic agents. For example, the therapeutic agent may be a protein, peptide, or polypeptide having the desired biological activity. Such proteins include, for example, toxins (e.g., abrin, lysine A, Pseudomonas exotoxin, cholera toxin, and diphtheria toxin); tumor necrosis factor, γ-interferon, α-interferon, nerve growth factor, platelet-derived growth factor, tissue plasminogen activator, and apoptotic agents (e.g., TNF-γ, AIM I, AIM Proteins such as II, Fas ligand and VEGF, anti-angiogenic substances (e.g., components of the coagulation pathway such as angiostatin, endostatin and tissue factor); biological reaction modifiers (e.g., interferon-gamma, interleukin-1, interleukin-2, interleukin-5, interleukin-6, interleukin-7, interleukin-9, interleukin-10, interleukin-12, interleukin-15, interleukin-23, granulocyte-macrophage colony-stimulating factor, and granulocytes) Examples include cytokines such as colony-stimulating factors; growth factors (e.g., growth hormone); or coagulation agents (e.g., calcium, vitamin K, tissue factor, for example, but not limited to Hagemann factor (factor XII), high molecular weight kininogen (HMWK), prekallikrein (PK), coagulation proteins—factor II (prothrombin), factor V, factor XIIa, factor VIII, factor XIIIa, factor XI, factor XIa, factor IX, factor IXa, factor X, phospholipids, and fibrin monomers).
[0092] The present invention comprises antibodies or functional fragments of the present invention that generate fusion proteins by recombination fusion or chemical conjugation (covalent or non-covalent conjugation) with heterologous proteins or polypeptides. In some embodiments, the length of such polypeptides may be about 10, about 20, about 30, about 40, about 50, about 60, about 70, about 80, about 90, or about 100 amino acids. In some embodiments, the present invention provides fusion proteins having functional fragments of the present antibody (e.g., Fab fragment, Fd fragment, Fv fragment, F(ab)2 fragment, VH domain, VH CDR, VL domain, or VL CDR) and heterologous proteins or polypeptides. In one embodiment, the heterologous protein or polypeptide to be fused with the antibody or functional fragment is sLe a It is useful for targeting specific cell types, such as cells that express [specific expression].
[0093] The conjugated protein or fusion protein of the present invention comprises any antibody or functional fragment of the present invention provided herein, conjugated (covalent or noncovalent conjugation) or fused by recombination with a diagnostic agent, detectable agent, or therapeutic agent. In one embodiment, the conjugated protein or fusion protein of the present invention comprises a 5B1, 9H3, 5H11, or 7E3 antibody and a diagnostic agent, detectable agent, or therapeutic agent. In another embodiment, the conjugated protein or fusion protein of the present invention comprises a functional fragment of a 5B1, 9H3, 5H11, or 7E3 antibody and a diagnostic agent, detectable agent, or therapeutic agent. In another embodiment, the conjugated protein or fusion protein of the present invention comprises a VH domain having any one amino acid sequence of the VH domain shown in residues 20-142 of SEQ ID NO: 2, residues 20-142 of SEQ ID NO: 6, residues 20-142 of SEQ ID NO: 10, or residues 20-145 of SEQ ID NO: 14, and / or a VL domain having any one amino acid sequence of the VL domain shown in residues 20-130 of SEQ ID NO: 4, residues 20-129 of SEQ ID NO: 8, residues 20-130 of SEQ ID NO: 12, or residues 23-130 of SEQ ID NO: 16, and a diagnostic agent, detectable agent, or therapeutic agent. In another embodiment, the conjugated protein or fusion protein of the present invention comprises one or more VH CDRs having any one amino acid sequence of the VH CDRs shown in SEQ ID NO: 2, 6, 10, or 14, and a diagnostic agent, detectable agent, or therapeutic agent. In another embodiment, the conjugated protein or fusion protein comprises one or more VL CDRs having any one amino acid sequence of the VL CDRs shown in SEQ ID NOs: 4, 8, 12, or 16, and a diagnostic agent, detectable agent, or therapeutic agent.In another embodiment, the conjugated protein or fusion protein of the present invention comprises at least one VH domain and at least one VL domain, as shown in residues 20-142 of SEQ ID NO: 2 and residues 20-130 of SEQ ID NO: 4; residues 20-142 of SEQ ID NO: 6 and residues 20-129 of SEQ ID NO: 8; residues 20-142 of SEQ ID NO: 10 and residues 20-130 of SEQ ID NO: 12; or residues 20-145 of SEQ ID NO: 14 and residues 23-130 of SEQ ID NO: 16, respectively, and a diagnostic agent, detectable agent, or therapeutic agent.
[0094] Methods for fusing or conjugating antibodies with diagnostic agents, detectable agents, or therapeutic agents (including polypeptides) are well known. For example, the following are incorporated herein by reference in their entirety: Arnon et al., “Monoclonal Antibodies For Immunotargeting Of Drugs In Cancer Therapy”, in Monoclonal Antibodies And Cancer Therapy, Reisfeld et al. (eds.), pp. 243–56 (Alan R. Liss, Inc., 1985); Hellstrom et al., “Antibodies For Drug Delivery”, in Controlled Drug Delivery (2nd edition), Robinson et al. (eds.), pp. 623–53 (Marcel Dekker, Inc., 1987); Thorpe, “Antibody Carriers Of Cytotoxic Agents In Cancer Therapy: A Review”, in Monoclonal Antibodies Vol. 84: Biological And Clinical Applications, Pinchera et al. (eds.), pp. 475–506 (1985); “Analysis, Results, And Future Prospective Of The Therapeutic Use Of Radiolabeled Antibody In Cancer Therapy”, in Monoclonal Antibodies For Cancer Detection And Therapy, Baldwin et al. (eds.), pp. 303-316 (Academic Press, 1985); Thorpe et al., 1982, Immunol. Rev.Volume 62: pp. 119-58; U.S. Nos. 5,336,603, 5,622,929, 5,359,046, 5,349,053, 5,447,851, 5,723,125, 5,783,181, 5,908,626, 5,844,095, and U.S. Patent Publications No. 5,112,946, No. 7,981,695, No. 8,039,273, No. 8,142,784; U.S. Patent Publications No. 2009 / 0202536, No. 2010 / 0034837, No. 2011 / 0137017, No. 2011 / 0280891, No. 2012 / 0003247; EP 307,434; EP 367,166; EP 394,827; PCT Public Issues WO 91 / 06570, WO 96 / 04388, WO 96 / 22024, WO 97 / 34631 and WO 99 / 04813; Ashkenazi et al., Proc. Natl. Acad. Sci. USA, Vol. 88: pp. 10535-10539, 1991; Traunecker et al., Nature, Vol. 331: pp. 84-86, 1988; Zheng et al., J. Immunol., Vol. 154: pp. 5590-5600, 1995; Vil et al., Proc. Natl. Acad. Sci. USA, See Vol. 89: pp. 11337–11341, 1992; and Senter, *Current Opinion in Chemical Biology*, Vol. 13: pp. 235–244 (2009).
[0095] In another embodiment, a diagnostic agent, detectable agent, or therapeutic agent can be attached by forming a disulfide bond in the hinge region of the reduced antibody component. Alternatively, such agents can be attached to the antibody component using a heterobifunctional crosslinking agent such as N-succinyl 3-(2-pyridyldithio)propionate (SPDP). Yu et al., Int. J. Cancer 56:244 (1994). General techniques for such conjugations are well known in the art. For example, see Wong, CHEMISTRY OF PROTEIN CONJUGATION AND CROSS-LINKING (CRC Press, 1991); Upeslacis et al., "Modification of Antibodies by Chemical Methods," in MONOCLONAL ANTIBODIES: PRINCIPLES AND APPLICATIONS, in Birch et al. (eds.), pp. 187-230 (Wiley-Liss, Inc., 1995); and Price, "Production and Characterization of Synthetic Peptide-Derived Antibodies," in MONOCLONAL ANTIBODIES: PRODUCTION, ENGINEERING AND CLINICAL APPLICATION, in Ritter et al. (eds.), pp. 60-84 (Cambridge University Press, 1995).
[0096] Alternatively, diagnostic agents, detectable agents, or therapeutic agents can be conjugated via the carbohydrate moiety of the antibody's Fc region. Methods for conjugating peptides via antibody components and antibody carbohydrate moieties are well known to those skilled in the art. See, for example, Shih et al., Int. J. Cancer. vol. 41: pp. 832-839 (1988); Shih et al., Int. J. Cancer. vol. 46: pp. 1101-1106 (1990); and Shih et al., U.S. Patent No. 5,057,313, all of which are incorporated by reference. A common method involves reacting an antibody component having an oxidized carbohydrate moiety with a carrier polymer having at least one free amine functional and supporting multiple peptides. This reaction results in the initial Schiff base (imine) linkage, which can be stabilized by reduction to a secondary amine to form the final conjugate.
[0097] However, even when the Fc region is absent, for example, when the antibody functional fragment provided herein is desired, it is possible to attach a diagnostic agent, detectable agent, or therapeutic agent. The carbohydrate moiety can be introduced into the light chain variable region of a full-length antibody or antibody fragment. For example, see Leung et al., J. Immunol., vol. 154:p. 5919 (1995); U.S. Patents 5,443,953 and 6,254,868, all incorporated by reference. Diagnostic agents, detectable agents, or therapeutic agents can be attached using an engineered carbohydrate moiety.
[0098] sLe a Therapeutic agents conjugated or recombinantly fused with the antibody functional fragment of the present invention can be selected to achieve the desired preventive or therapeutic effect(s). It is understood that considering the nature of the disease, the severity of the disease, and the subject's condition when determining which therapeutic agent to conjugate or recombinantly fused with the antibody or functional fragment of the present invention is within the scope of the skill level of clinicians or other healthcare professionals.
[0099] sLe, which is detectably labeled as provided herein. a The conjugate or fusion antibody or functional fragment of the present invention, which binds to sLe, can be used for diagnostic purposes to detect, diagnose, or monitor a disease, where the cells causing or associated with the disease are sLe. a It expresses. For example, as provided herein, but not limited to, cancer cells and tumors such as tumors of the gastrointestinal tract, breast cancer, ovarian cancer, colon cancer, colorectal adenocarcinoma, pancreatic cancer, pancreatic adenocarcinoma, small cell lung cancer, bladder adenocarcinoma, metastatic colon cancer, colorectal cancer, signet ring ovarian cancer, and metastatic cancers, sLe a It has been shown that it expresses. Accordingly, the present invention provides a method for detecting cancer or tumorigenesis in a subject by administering an effective amount of the conjugate or fusion antibody or functional fragment of the present invention to a subject in which it is necessary to detect cancer or tumorigenesis in the subject. In some embodiments, the detection method is sLe a Using one or more conjugates or fusion antibodies or functional fragments of the present invention that bind to the subject's cell or tissue sample, a The steps include assaying the expression of and sLe a The level of sLe is compared to a control level, for example, the level in a normal tissue sample (e.g., from a subject without disease, or from the same subject before the onset of disease), thereby determining the assayed sLe. a The level is sLe a The diagnostic method may further include steps indicating the disease by being elevated compared to a control level. Such a diagnostic method may allow healthcare professionals to use preventive measures or invasive procedures earlier than would otherwise be possible, thereby preventing the onset or further progression of the disease.
[0100] The antibody or functional fragment of the present invention is used in a biological sample using classical immunohistochemical methods provided herein or known to those skilled in the art. aIt can also be used to assay antigen levels (see, for example, Jalkanen et al., 1985, J. Cell. Biol. Vol. 101: pp. 976-985; and Jalkanen et al., 1987, J. Cell. Biol. Vol. 105: pp. 3087-3096). a Other antibody-based methods useful for detecting include immunoassays such as enzyme-linked immunosorbent assays (ELISA) and radioimmunoassays (RIA). Suitable antibody assay labels are known in the art and include enzyme labels, such as glucose oxidase; and radioisotopes, such as iodine. 125 I, 121 I), carbon ( 14 C), sulfur ( 35 S), tritium ( 3 H), Indium ( 121 In), and technetium ( 99 Examples include Tc), luminescent labels such as luminol, and fluorescent labels such as fluorescein and rhodamine, as well as biotin.
[0101] In one embodiment, the present invention provides for the detection and diagnosis of disease in humans. In one embodiment, the diagnosis is a)sLe a a) administer an effective amount of the conjugate or fusion protein of the present invention that binds to the subject (e.g., parenterally, subcutaneously, or intraperitoneally), b) administer the conjugate or fusion protein to the subject in sLe aThe procedure includes the steps of: a) allowing a time interval after administration to preferentially concentrate on the site where the protein is expressed (and, in some embodiments, to remove unbound conjugate or fusion proteins to background levels); c) determining the background level; and d) detecting the conjugate or fusion protein in the subject, and indicating that the subject has the disease if the detected conjugate or fusion protein is above the background level. The background level can be determined by various methods, including comparing the amount of detected conjugate or fusion protein to a predetermined standard value for a particular system.
[0102] It is understood that the size of the subject and the image processing system used determine the quantity of image processing required to produce the diagnostic image, and that this can be easily determined by those skilled in the art. For example, in the case of a human subject, in the case of a radioisotope conjugated with the antibody or functional fragment of the present invention, the amount of radioactivity to be injected is usually about 5 to 20 millicuries. 99 It extends to Tc. Next, the conjugate is sLe a It preferentially accumulates in the locations of cells that express it. In vivo tumor imaging is described in SW Burchiel et al., "Immunopharmacokinetics of Radiolabeled Antibodies and Their Fragments." (Tumor Imaging: The Radiochemical Detection of Cancer, Chapter 13, edited by SW Burchiel and BA Rhodes, Masson Publishing Inc. (1982)).
[0103] Depending on several variables, including the type of detectable agent used and the method of administration, the time interval after administration to preferentially concentrate the conjugate at a site in the subject and to remove unbound conjugate to background levels is 6 to 48 hours, 6 to 24 hours, or 6 to 12 hours. In another embodiment, the time interval after administration is 5 to 20 days or 5 to 10 days. In one embodiment, disease monitoring is performed by repeating the diagnostic method provided herein, for example, one month after the initial diagnosis, six months after the initial diagnosis, one year after the initial diagnosis, or thereafter.
[0104] The presence of a conjugate or fusion protein can be detected in a subject using methods known in the art of in vivo scanning. These methods depend on the type of detectable agent used. Those skilled in the art can determine a suitable method for detecting a particular detectable agent. Methods and devices that can be used in the diagnostic methods of the present invention include, but are not limited to, computed tomography (CT), whole-body scans such as position emission tomography (PET), magnetic resonance imaging (MRI), and ultrasound. In one embodiment, the antibody or functional fragment of the present invention is conjugated with a radioisotope and detected in a subject using a radioresponsive surgical instrument. In another embodiment, the antibody or functional fragment of the present invention is conjugated with a fluorescent compound and detected in a subject using a fluorescence-responsive scanning instrument. In yet another embodiment, the antibody or functional fragment of the present invention is conjugated with zirconium ( 89 The antibody or functional fragment of the present invention is conjugated with a positron-emitting metal such as Zr or any other positron-emitting metal provided herein or known in the art to be detectable by positron emission tomography, and detected in a subject using positron emission tomography. In yet another embodiment, the antibody or functional fragment of the present invention is conjugated with a paramagnetic label and detected in a subject using magnetic resonance imaging (MRI).
[0105] In one embodiment, the present invention provides a pharmaceutical composition having the antibody or functional fragment of the present invention and a pharmaceutically acceptable carrier. Examples of pharmaceutically acceptable carriers that can be used in the pharmaceutical composition of the present invention include any of the standard pharmaceutical carriers known in the art, such as phosphate-buffered saline, water, emulsions such as oil-water emulsions, and various types of wetting agents. These pharmaceutical compositions can be prepared in liquid unit dose form or any other dosage form sufficient to deliver the antibody or functional fragment of the present invention to a target area of a subject requiring treatment. For example, the pharmaceutical composition can be prepared in any form suitable for a selected administration method, e.g., intravascular, intramuscular, subcutaneous, intraperitoneal, etc. Other optional components, e.g., pharmaceutical-grade stabilizers, buffers, preservatives, excipients, etc., can be readily selected by those skilled in the art. Preparation of the pharmaceutical composition, considering pH, isotonicity, stability, etc., is within the scope of the art.
[0106] Pharmaceutical formulations containing one or more antibodies or functional fragments of the present invention provided herein can be prepared for storage in the form of lyophilized formulations or aqueous solutions by mixing antibodies of a desired degree of purity with an optional physiologically acceptable carrier, excipient, or stabilizer (Remington's Pharmaceutical Sciences (1990), Mack Publishing Co., Easton, PA). Acceptable carriers, excipients, or stabilizers are non-toxic to the recipient at the dosage and concentration used, and include buffers such as phosphoric acid, citrate, and other organic acids; antioxidants including ascorbic acid and methionine; preservatives (e.g., octadecyldimethylbenzylammonium chloride; hexamethonium chloride; benzalkonium chloride, benzethonium chloride; phenol, butyl, or benzyl alcohol; alkylparabens such as methylparaben or propylparaben; catechol; resorcinol; cyclohexanol; 3-pentanol; and m-cresol, etc.); and low molecular weight (less than about 10 residues) polypeptides. Examples include proteins such as serum albumin, gelatin, or immunoglobulins; hydrophilic polymers such as polyvinylpyrrolidone; amino acids such as glycine, glutamine, asparagine, histidine, arginine, or lysine; monosaccharides, disaccharides, and other carbohydrates, including glucose, mannose, or dextrin; chelating agents such as EDTA; sugars such as sucrose, mannitol, trehalose, or sorbitol; salt-forming counterions such as sodium; metal complexes (e.g., Zn-protein complexes); and / or nonionic surfactants such as TWEEN®, PLURONICS®, or polyethylene glycol (PEG).
[0107] Accordingly, in some embodiments, the present invention provides a method for treating or preventing a disease in a subject that requires treatment or prevention of the disease. The method of the present invention may include the step of administering a therapeutically effective amount of a pharmaceutical composition provided herein to a subject. For example, the pharmaceutical composition may comprise one or more antibodies or functional fragments provided herein. Diseases that can be treated or prevented using the method of the present invention include cancer, tumorigenesis and / or metastasis. In particular, the method of the present invention is applicable to cancer cells or tumors that are affected by carbohydrate sLe a It is useful for treating cancer or tumor formation that exhibits the present invention. Non-limiting examples of cancers or tumors that can be treated or prevented using the method of the present invention include tumors of the gastrointestinal tract, e.g., colon cancer, colorectal adenocarcinoma, metastatic colon cancer, colorectal cancer, pancreatic cancer, or pancreatic adenocarcinoma; small cell lung cancer; bladder adenocarcinoma; ovarian signet ring cell carcinoma; ovarian cancer, metastatic cancer; and adenocarcinomas of the stomach, esophagus, throat, genitourinary tract, or breast.
[0108] Therefore, in some embodiments, the present invention relates to a method for treating cancer or preventing tumor metastasis in a subject who requires treatment of cancer or prevention of tumor metastasis by administering a therapeutically effective amount of a pharmaceutical composition having an antibody or a functional fragment thereof, wherein the antibody or functional fragment is sLe a The present invention provides a method comprising a VH domain that binds to and has an amino acid sequence selected from the group consisting of residues 20-142 of SEQ ID NO: 2, residues 20-142 of SEQ ID NO: 6, residues 20-142 of SEQ ID NO: 10, and residues 20-145 of SEQ ID NO: 14. In another embodiment, the present invention provides a method for treating cancer or preventing tumor metastasis in a subject who requires treatment of cancer or prevention of tumor metastasis by administering a therapeutically effective amount of a pharmaceutical composition having an antibody or a functional fragment thereof, wherein the antibody or functional fragment is sLe aThe present invention provides a method comprising a VL domain that binds to and has an amino acid sequence selected from the group consisting of residues 20-130 of SEQ ID NO: 4, residues 20-129 of SEQ ID NO: 8, residues 20-130 of SEQ ID NO: 12, and residues 23-130 of SEQ ID NO: 16. In yet another aspect, the present invention provides a method for treating cancer or preventing tumor metastasis in a subject who requires treatment of cancer or prevention of tumor metastasis by administering a therapeutically effective amount of a pharmaceutical composition having an antibody or a functional fragment thereof, wherein the antibody or functional fragment is sLe a The present invention provides a method that binds to a molecule and includes both a VH domain and a VL domain, wherein the VH domain and the VL domain each contain an amino acid sequence selected from the group consisting of residues 20-142 of SEQ ID NO: 2 and 20-130 of SEQ ID NO: 4; residues 20-142 of SEQ ID NO: 6 and 20-129 of SEQ ID NO: 8; residues 20-142 of SEQ ID NO: 10 and 20-130 of SEQ ID NO: 12; and residues 20-145 of SEQ ID NO: 14 and 23-130 of SEQ ID NO: 16.
[0109] Formulations such as those described herein may contain two or more active compounds as necessary for the specific disease being treated. In certain embodiments, the formulation comprises the antibody or functional fragment of the present invention and one or more active compounds having complementary activities that do not adversely affect each other. Such molecules are appropriately present in combination in amounts effective for the intended purpose. For example, the antibody or functional fragment of the present invention can be combined with one or more other therapeutic agents. Such combination therapies can be administered to the subject simultaneously or sequentially.
[0110] Accordingly, in certain embodiments, the present invention provides a method for treating or preventing a disease by administering a therapeutically effective amount of a pharmaceutical composition provided herein to a subject who requires treatment or prevention of the disease, wherein the pharmaceutical composition comprises an antibody or functional fragment of the present invention and a second therapeutic agent. A suitable second therapeutic agent can be readily determined by those skilled in the art as discussed herein. In certain embodiments of the present invention, as presented in Example IV herein, the second therapeutic agent may be Taxol.
[0111] The pharmaceutical compositions provided herein contain one or more therapeutically effective amounts of the antibodies of the present invention provided herein, and optionally one or more additional therapeutic agents, in a pharmaceutically acceptable carrier. Such pharmaceutical compositions are useful in the prevention, treatment, management, or improvement of one or more diseases or symptoms thereof, such as cancer or tumorigenesis.
[0112] The pharmaceutical composition may contain one or more antibodies or functional fragments of the present invention. In one embodiment, the antibody or functional fragment is formulated into a suitable pharmaceutical preparation, such as a sterile solution or suspension for parenteral administration. In one embodiment, the antibody or functional fragment provided herein is formulated into a pharmaceutical composition using techniques and procedures well known in the art (see, for example, Ansel (1985) Introduction to Pharmaceutical Dosage Forms, 4th edition, p. 126).
[0113] The antibody or functional fragment of the present invention can be included in a pharmaceutical composition in a therapeutically effective amount sufficient to exert a therapeutically useful effect on the treated subject without undesirable side effects. The therapeutically effective concentration can be empirically determined by testing the compound in vitro and in vivo using conventional methods and then estimating the dosage for humans from there. The concentration of the antibody or functional fragment in the pharmaceutical composition depends, for example, on the physicochemical properties of the antibody or functional fragment, the dosing schedule, and the dosage, as well as other factors well known to those skilled in the art.
[0114] In one embodiment, the therapeutically effective dose yields serum concentrations of antibody or functional fragment ranging from approximately 0.1 ng / ml to approximately 50-100 μg / ml. In another embodiment, the pharmaceutical composition yields doses ranging from approximately 0.001 mg to approximately 500 mg of antibody per kilogram of body weight per day. Pharmaceutical unit forms can be prepared to yield combinations of antibody or functional fragment and / or other optional basic components ranging from approximately 0.01 mg, 0.1 mg, or 1 mg per unit to approximately 30 mg, 100 mg, or 500 mg, and in one embodiment from approximately 10 mg to approximately 500 mg.
[0115] The antibodies or functional fragments of the present invention may be administered in a single dose or divided into several smaller doses administered at time intervals. It is understood that the precise dosage and duration of treatment can be determined empirically, depending on the disease being treated, using known test protocols or by extrapolating in vivo or in vitro test data. It should be noted that concentration and dosage values may also vary depending on the severity of the condition to be alleviated. It should be further understood that for any particular subject, specific dosing regimens can be adjusted over time according to the individual needs and the professional judgment of the person administering or supervising the administration of the composition, and that the concentration ranges described herein are merely illustrative and do not limit the scope or implementation of the claimed composition.
[0116] The mixture resulting from the mixing or addition of the antibody or functional fragment of the present invention may be a solution, suspension, or the like. The form of the resulting mixture depends on several factors, including the intended dosage form and the solubility of the compound in the selected carrier or vehicle. The effective concentration, which is sufficient to improve the symptoms of the disease, disorder, or condition being treated, can be determined empirically.
[0117] Pharmaceutical compositions are provided for administration to humans and animals in unit dosage forms, such as sterile parenteral solutions or suspensions, containing appropriate amounts of the compound or pharmaceutically acceptable derivatives thereof. In one embodiment, antibodies or functional fragments may be formulated and administered in unit dosage forms or multiple-dosage forms. A unit dosage form refers to a physically distinct unit, individually packaged as known in the art, suitable for human and animal subjects. Each unit dose contains a predetermined quantity of the antibody or functional fragment of the present invention sufficient to produce the desired therapeutic effect, accompanied by the necessary pharmaceutical carrier, vehicle, or diluent. Examples of unit dosage forms include ampoules and syringes. A unit dosage form may be administered in fractions or multiples thereof. A multiple-dose form is a plurality of identical unit dosage forms packaged in a single container for divided administration. Examples of multiple-dose forms include pint or gallon vials or bottles. Therefore, multiple dosage forms are multiple unit doses that are not separated by packaging.
[0118] In one embodiment, one or more antibodies or functional fragments of the present invention are contained in a liquid pharmaceutical formulation. A pharmaceutically administered liquid composition can be prepared, for example, by dissolving, dispersing, or otherwise mixing the antibodies or functional fragments provided herein with an optional pharmaceutical adjuvant in a carrier such as water, saline, aqueous dextrose, glycerol, glycol, or ethanol to form a solution. If desired, the administered pharmaceutical composition may also contain trace amounts of non-toxic adjuvants, such as wetting agents, emulsifiers, solubilizers, pH buffers, etc., such as acetic acid, sodium citrate, cyclodextrin derivatives, sorbitan monolaurate, sodium triethanolamine acetate, triethanolamine oleate, and other such agents. Practical methods of preparing such dosage forms are known or will become apparent to those skilled in the art. See, for example, Remington's Pharmaceutical Sciences (1990), Mack Publishing Co., Easton, PA.
[0119] Methods for administering the pharmaceutical compositions of the present invention are well known in the art. It is understood that an appropriate route of administration of the pharmaceutical composition can be easily determined by an experienced clinician. Exemplary routes of administration include intravenous injection, intramuscular injection, intradermal injection, or subcutaneous injection. Furthermore, it is understood that formulations of the pharmaceutical compositions can be easily adapted to the route of administration. The present invention also provides that, after administration of the pharmaceutical composition of the present invention, one or more pharmaceutical compositions provided herein may be administered to the subject in a delayed, continuous, and / or repeated manner.
[0120] The methods of the present invention for treating diseases include (1) preventing the disease, i.e., preventing the development of clinical symptoms of the disease in subjects who may be predisposed to the disease but have not yet experienced or exhibited symptoms of the disease; (2) inhibiting the disease, i.e., stopping or reducing the development of the disease or its clinical symptoms; or (3) mitigating the disease, i.e., causing regression of the disease or its clinical symptoms. The methods of the present invention for preventing disease include preventing the development of clinical symptoms indicating cancer or tumor formation. Such prevention includes, for example, maintaining normal physiological indicators in the subject. Therefore, prevention may include prophylactic measures taken on the subject to protect the subject from the appearance of tumor metastases.
[0121] The therapeutically effective amount of the pharmaceutical composition used in the method of the present invention varies depending on the pharmaceutical composition used, the disease and its severity, and the age and weight of the subject being treated, all of which are within the scope of the skills of the attending clinician. Subjects treated by the method of the present invention include vertebrates, preferably mammals, and more preferably humans.
[0122] Modifications that do not substantially affect the activity of the various embodiments of the present invention are also provided within the definition of the invention as provided herein. Accordingly, the following examples are illustrative but not limiting to the present invention. [Examples]
[0123] (Example I) sLe a Human monoclonal antibodies against this substance have potent antitumor activity.
[0124] Carbohydrate antigens sLe a It is widely expressed on epithelial tumors of the gastrointestinal tract, breast, and pancreas, as well as on small cell lung cancer. a Overexpression of sLe appears to be a significant event in the invasion and metastasis of many tumors, and it makes them more susceptible to antibody-mediated lysis. asLe is an attractive molecular target for tumor therapy. Therefore, as described herein, a -Fully human monoclonal antibodies (mAbs) derived from blood lymphocytes of individuals immunized with the KLH vaccine were generated and characterized. Based on ELISA and FACS, sLe a Several mAbs were selected and further characterized, including two mAbs with high affinity for Neu5Acα2-3Galβ1-3(Fucα1-4)GlcNAcβ and Neu5Gcα2-3Galβ1-3(Fucα1-4)GlcNAcβ, respectively. Both antibodies were specific to Neu5Acα2-3Galβ1-3(Fucα1-4)GlcNAcβ as determined by glycan array analysis. Complement-dependent cytotoxicity against DMS-79 cells was higher with r7E3(IgM) than with r5B1(IgG1) (EC50, 0.1 μg / mL vs. 1.7 μg / mL). Furthermore, the r5B1 antibody showed high levels of antibody-dependent cytotoxic activity against DMS-79 cells using human NK cells or peripheral blood mononuclear cells. To evaluate in vivo efficacy, antibodies were tested in xenograft models using Colo205 or DMS-79 tumor cells implanted in severe combined immunodeficiency (SCID) mice. In the Colo205 xenograft model, treatment with four doses of r5B1 (100 μg per dose) over the first 21 days doubled the median survival time to 207 days, and 3 out of 5 animals survived after 6 doses. In the DMS-79 xenograft model, the growth of established DMS-79 tumors was suppressed or regressed in animals treated with the r5B1 antibody. sLe as a target of immune attack a Based on their potential, affinity, specificity, and effector function, 5B1 and 7E3 have clinical utility in the treatment of cancer.
[0125] Materials, cells, and antibodies DMS-79 (Pettengill et al., Cancer, Vol. 45: pp. 906-918 (1980)), SW626, EL4, HT29, BxPC3, SK-MEL28, and P3×63Ag8.653 cell lines were purchased from the American Type Culture Collection (ATCC). Colo205-luc cells (Bioware ultra) were obtained from Caliper Life Sciences. The mouse control mAb 121SLE(IgM) was purchased from GeneTex. a The tetrasaccharide (Cat number S2279) was purchased from Sigma-Aldrich. a -HSA (Human Serum Albumin) Conjugate (Cat No. 07-011), Monovalent Biotinylated sLe a (sLe a -sp-biotin; Cat number 02-044), polyvalent biotinylation sLe a -PAA (Cat number 01-044), biotin-labeled Le a -PAA (Cat number 01-035), and sLe x -PAA-biotin (Cat. 01-045) was purchased from GlycoTech. In the polyvalent presentation form, the tetrasaccharide was incorporated into a polyacrylamide matrix (PAA), thereby creating a 30 kDa polyvalent polymer with a carbohydrate content of approximately 20%, where biotin was N-substituted at approximately the 5th amide group of the polymer chain in a 4:1 ratio. Other HSA or BSA complex carbohydrates used in this study were as described. a The preparation was done in-house using pentenyl glycosides. Ragupathi et al., Cancer Immunol Immunother, Vol. 58: pp. 1397-405 (2009). GD3, fucosyl-GM1, GM2, and GM3 were purchased from Matreya, and GD2 was purchased from Advanced ImmunoChemical.
[0126] anti-sLe a Generation of mAb-producing hybridomas At MSKCC, a study was initiated under MSKCC and FDA-approved IRB protocol and IND to study sLe in breast cancer patients. a -Blood samples were obtained from three patients in an ongoing clinical trial using the KLH conjugate vaccine. Blood samples were selected from two patients after 3 or 4 doses of vaccination, and these were sLe a These showed antibody titers of 1 / 160 and 1 / 320, respectively. These serum samples (and mouse mAb19.9) were found to be sLe in the FACS assay. a It reacts well with positive cell lines and mediates potent CDC. Ragupathi et al., Cancer Immunol Immunother, Vol. 58: pp. 1397-405 (2009). Peripheral blood mononuclear cells (PBMCs) were isolated from approximately 80-90 mL of blood by gradient centrifugation using Histopaque-1077 (Sigma-Aldrich).
[0127] PBMCs were cultured in RPMI-1640 medium supplemented with L-glutamine, non-essential amino acids, sodium pyruvate, vitamins, penicillin / streptomycin, 10% FBS (Omega Scientific), 10 ng / mL IL-21 (Biosource), and 1 μg / mL anti-CD40 mAb (G28-5 hybridoma supernatant; ATCC). The cells were fused with P3×63Ag8.653 myeloma cells by electrofusion.
[0128] sLe a ELISA sLe a For ELISA, the plate is treated with 1 μg / mL sLe a -HSA conjugate, monovalent biotinylated sLe a Using or by capturing polyvalent biotinylated sLe on a Neutr-avidin coated plate aThe wells were coated with PAA. Uncoated wells (PBS) and wells coated with HSA were used as controls. The bound antibody was first detected using horseradish peroxidase (HRP)-labeled goat anti-human IgA+G+M (Jackson ImmunoResearch), and the positive wells were then probed with IgG-Fc or IgM-specific secondary antibodies to determine the isotype.
[0129] Carbohydrate specificity analysis Closely related antigens, Le a and sLe x Cross-reactivity to biotin-labeled Le was evaluated by surface plasmon resonance (SPR), and a -PAA and biotin-sLe x - Confirmed by ELISA using PAA. Binding to gangliosides GD2, GD3, fucosyl-GM1, GM2, and GM3 was tested by ELISA. Specificity of the mAb to several other relevant carbohydrate moieties was evaluated using competitive ELISA. Briefly, 2 μg / mL sLe a -HSA conjugates were coated onto plates and then blocked with 3% BSA in PBS. Next, 30 μL each of different carbohydrate moieties (40 μg / mL in PBS prepared from 1 mg / mL storage solution) that were either unconjugated or conjugated with HSA or BSA were separately mixed with 30 μL of test antibody and incubated in sample plates at room temperature. After 30 minutes, 50 μL of the mixture was transferred to the coated assay plate and incubated for 1 hour, then incubated with HRP-labeled goat anti-human IgA+G+M, washed, and conjugated antibody was colorimetrically detected using a Versamax spectrofluorometer (all steps were performed at room temperature). The carbohydrate moieties tested were globo H, Lewis Y, Lewis X, sialyl-Thomson-nouveaux (sTn), clustered sTn, Thomson Friedenreich (TF), and Tighe Le b / Le YMucin, porcine submaxillary mucin (PSM), and sLe a Tetrasaccharides and sLe a -HSA conjugate was included. To determine the fine specificity of the antibody, glycan array analysis was performed by the Consortium for Functional Glycomics Core H group. 10 μg / mL 5B1 and 7E3 antibodies were tested in 6-strands using version 4.1 of a printed array consisting of 465 glycans.
[0130] Immunoglobulin cDNA cloning and recombinant antibody expression Variable region cDNAs of human mAb heavy and light chains were recovered from individual hybridoma cell lines by RT-PCR and subcloned into IgG1 or IgM heavy chain expression vectors or IgK or IgL light chain expression vectors as previously described (Sawada-Hirai et al., J. Immune Based Ther. Vaccines, vol. 2:p. 5 (2004)). Ig heavy or light chain expression vectors were double digested with Not I and Sal I, and then both fragments were ligated to form a dual gene expression vector. CHO cells in 6-well plates were transfected with the dual gene expression vector using Lipofectamine 2000 (Invitrogen). After 24 hours, transfected cells were transferred to a 10 cm dish with selective medium [DMEM supplemented with 10% dialysis FBS (Invitrogen), 50 μmol / L L-methionine sulfoximine (MSX), GS supplement (Sigma-Aldrich), and penicillin / streptomycin (Omega Scientific)]. After 2 weeks, MSX-resistant transfectants were isolated and grown. a By measuring the antibody level in the supernatant during a specific ELISA assay, high anti-sLe levels can be identified. a Antibody-producing clones were selected and expanded for large-scale mAb production.
[0131] Human mAb Purification Antibodies were purified using an Aekta Explorer (GE Healthcare) system running Unicorn 5.0 software. Briefly, stable clones of 5B1 or 7E3 were grown in a Wave bioreactor in serum-free culture medium, the recovered supernatant was clarified by centrifugation and filtration, and stored refrigerated until use. Human IgG antibodies were purified using a protein A column of appropriate size with 10 mmol / L PBS and 150 mmol / L NaCl running buffer. Human IgM antibodies were purified using a hydroxyapatite column, and IgM was eluted using a 500 mmol / L phosphate gradient. For IgG and IgM, respectively, E 1% Using 1.4 and 1.18 280 The antibody concentration was determined and calculated. The purity of each preparation was evaluated by SDS-PAGE analysis under reducing conditions (1-5 μg per lane), and the purity was over 90% based on the sum of the heavy and light chains.
[0132] Flow cytometry sLe a Positive or negative tumor cell lineage (0.5 × 10 cells per condition) 6The cells were washed in PBS / 2% FBS (PBSF). Then, test or control human mAbs were added (1-2 μg / mL in complete medium) and incubated on ice for 30 minutes. Gilewski et al., Clin Cancer Res, vol. 6: pp. 1693-701 (2000); Gilewski et al., Proc. Natl. Acad. Sci. USA, vol. 98: pp. 3270-3275 (2001). After washing in PBSF, the cells were incubated on ice for 30 minutes with Alexa-488 anti-human IgG-Fcγ or anti-human IgM-μ (Invitrogen). The cells were washed twice in PBSF and analyzed by flow cytometry using the Guava Personal Cell Analysis-96 (PCA-96) System (Millipore). Colo205-luc cells were incubated with a 2 μg / mL primary antibody, then stained with a secondary antibody from SouthernBiotech, and analyzed using FlowJo 7.2.4 software on a Becton Dickinson FACS Advantage IV instrument.
[0133] Affinity determination Affinity constants were determined using the SPR principle with Biacore3000 (GE Healthcare). Biotin-labeled monovalent sLe a (Cat number 02-044) or polyvalent sLe a -PAA-biotin (Cat number 01-044) was coupled to separate flow cells of the SPA biosensor chip according to the manufacturer's instructions. Flow cells blocked with culture medium containing HSA and free biotin were used as reference cells. From several known concentrations of antibodies diluted in HBS-EP buffer (10 mmol / L HEPES, pH 7.4, 150 mmol / L NaCl, 3.4 mmol / L EDTA, 0.005% surfactant P20), sLe aBinding rate parameters were determined using flow cells coated with -PAA-biotin. Estimates of association and dissociation rates for affinity calculation were obtained using curve fitting software provided by Biacore instrument.
[0134] CDC assay sLe a Antigen-positive and negative cell lines were used for a 90-minute cytotoxicity assay (Guava PCA-96 Cell-Toxicity kit; Millipore; Cat number 4500-0200) using human complement (Quidel; Cat number A113) and purified human mAbs at various dilutions (0.1-25 μg / mL), or using a positive control mAb, as previously described (Ragupathi et al. Clin Cancer Res 2003, Vol. 9: p. 5214; Ragupathi et al. Int J Cancer 2000, Vol. 85: p. 659; Dickler et al. Cancer Res 1999, Vol. 5: p. 2773). Briefly, the target cells were 2.5 × 10⁶. 6 Green / yellow fluorescent target cells were obtained by coating individual cells with carboxyfluorescein diacetate succinymyl ester (CSFE). The coated cells (1 × 10⁶ cells per 50 μL of sample) 5Cells were incubated with 100 μL of antibody on ice for 40 minutes. Next, 50 μL of human complement diluted 1:2 in complete medium (RPMI-1640, 10% FCS) or medium alone was added to the triple sample and incubated at 37°C for 90 minutes. Therefore, the final complement dilution in the assay was 1:8. Cells killed during this incubation period were labeled with the membrane-impermeable dye 7-amino-actinomycin D (7-AAD), and the samples were analyzed by two-color immunofluorescence using the Guava CellToxicity software module. A control sample with NP40 added was used to determine maximum cell death, and the sample with complement alone served as a baseline. The percentage of dead cells was determined by appropriate gating and calculated according to the following formula: Death % = [(Sample % - Complement alone %) / (NP40 0% - Complement alone %)] × 100.
[0135] Antibody-dependent cell-mediated cytotoxicity assay PBMC effector cells were isolated from blood samples obtained under a protocol approved by the MSKCC IRB by Ficoll-Hypaque density centrifugation. Target cells were 5 × 10⁶ cells per 1 mL of full growth medium. 6Each cell was incubated with 15 μL of 0.1% calcein-AM solution (Sigma-Aldrich) in the presence of 5% CO2 at 37°C for 30 minutes. The cells were washed twice with 15 mL of PBS-0.02% EDTA and resuspended in 1 mL of complete growth medium. 50 microliters (10,000 cells) of labeled target cells were plated into a 96-well plate in or without the antibody concentrations shown in Figure 13 and incubated with 50 μL of freshly isolated peripheral blood mononuclear cells (effector cells, E / T ratio 100:1) as appropriate. After incubation for 2 hours, the plate was centrifuged at 300 × g for 10 minutes, and 75 μL of the supernatant was transferred to a new flat-bottom 96-well plate. Fluorescence in the supernatant was measured using Fluoroskan Ascent (Thermo Scientific) at excitation at 485 nm and emission at 535 nm. Spontaneous release was determined from target cells in RPMI-1640 medium with 30% FBS but without effector cells, and maximal release was determined from target cells in RPMI-1640 medium with 30% FBS and 6% Triton X-100 but without effector cells. Percent cytotoxicity was calculated as [(count in sample - spontaneous release) / (maximum count - spontaneous release)] × 100.
[0136] mAb internal transfer assay The 5B1 antibody was internally transferred by plating it in a double-decker 96-well plate (2,000 cells / 90 μL / well) and incubating it overnight in sLe aThe cytotoxic activity of the r5B1 and Hum-ZAP secondary conjugate (Advanced Targeting Systems) complex against expressing BxPC3 cells was evaluated by measuring the cytotoxic activity. Various concentrations of 5B1 antibody were incubated with the Hum-ZAP secondary conjugate at room temperature according to the manufacturer's instructions. Next, 10 μL / well of the r5B1 and Hum-ZAP complex was added to the cells and incubated for 3 days. 25 microliters of thiazolyl blue tetrazolium bromide (Sigma-Aldrich) solution (5 mg / mL in PBS) was added to each well and incubated at 37°C. After incubation for 2 hours, 100 μL / well of solubilization solution (20% SDS / 50% N,N-dimethylformamide) was added to each well and incubated for a further 16 hours at 37°C. OD was measured at 570 / 690 nm, and the values obtained using the medium alone were used for plate background subtraction. Sample values were normalized using eight parallel cultures without antibodies (sample / untreated mean × 100).
[0137] heterogeneous transplant model Female CB17 SCID mice (5-8 weeks old) were purchased from Taconic. For the Colo205 xenograft model, Colo205-luc cells (0.5 × 10¹⁶) were placed in 0.1 mL of full growth medium. 6 mAb 5B1 was injected into the tail vein on day 0 using a BD insulin syringe (Becton Dickinson & Co) with a 28G needle. For the first study, 100 micrograms of mAb 5B1 were injected intraperitoneally on days 1, 7, 14, and 21 (Experiment 1) or on days 1, 4, 7, 10, 14, and 21 (Experiment 2). For the second study, 100 μg, 300 μg, or 1 mg of mAb 5B1 were injected intraperitoneally 4 days after tumor cell injection, then twice weekly for the first two weeks and once weekly for the following seven weeks. Mice were monitored for tumor development. For the DMS-79 xenograft model, DMS-79 cells (1 × 10⁶) were used. 6) was subcutaneously injected into female CB17 SCID mice, and the tumor length was 5 mm (approximately 20 mm). 2 After reaching ), treatment of the mice was initiated on day 19. The animals were then treated by intraperitoneal injection of human IgG or 5B1 antibody at a dose of 200 μg, in addition to intravenous injection of cRGD to increase vascular permeability, initially at 80 μg, then at 40 μg per dose for 5 days per week until day 37.
[0138] All procedures were performed under protocols approved by the Memorial Sloan Kettering Cancer Center Institutional Animal Care and Use Committee. Kaplan-Meier survival curves were generated using GraphPad Prism 5.1 (GraphPad Software) and analyzed using the Mantel-Haenszel log-rank test.
[0139] result Identification of human monoclonal antibodies and generation of recombinant antibodies by ELISA Blood samples from three vaccinated patients were used for hybridoma generation, and many positive wells were detected in antigen-specific ELISA assays (Table 3). Extensive screening was used to eliminate antibodies showing poor or nonspecific binding. a Eight human antibody-expressing hybridoma cells (one IgM and seven IgG) that showed strong reactivity to were initially selected, expanded, and subcloned for further characterization. Two antibodies (9H1 and 9H3) were used in sLe a - showed strong binding to HSA conjugates, but sLe a - No binding to the PAA-coated plate was observed. The three antibodies (5B1, 5H11, and 7E3) were analyzed by ELISA assay and showed monovalent sLe a , multivalent sLe a and sLe a -It showed strong binding to HSA conjugates (Table 4).
[0140] [Table 3]
[0141] [Table 4]
[0142] The heavy chain and light chain variable regions from four selected antibodies were recovered by RT-PCR and cloned into our full-length IgG1 or IgM expression vectors. Sequence analysis using IMGT / V-Quest (Brochet et al., Nucleic Acids Res., Vol. 36: W503-W508 (2008)) revealed that three selected IgG antibodies, 5B1(IgG / λ), 9H3(IgG / λ), and 5H11(IgG / λ), originated from the same VH family and all utilized the lambda light chain. These IgG1 antibodies exhibited different CDR sequences, each containing 16, 5, or 3 extragerm mutations, respectively (Figures 1-6; Table 5). The IgM antibody (7E3) utilized the kappa light chain and contained 6 heavy chain mutations (Figures 7-8; Table 5). The increased mutations in 5B1 indicated affinity maturation. Recombinant antibodies were produced in CHO cell lines within a wave bioreactor system and purified using protein A or hydroxyapatite chromatography for IgG and IgM, respectively. The purified recombinant antibodies retained the properties of the original hybridoma-derived antibodies in terms of binding and specificity in ELISA.
[0143] [Table 5]
[0144] Analysis of tumor cell binding Cell surface binding is crucial for cytotoxic activity and was therefore tested next. Flow cytometry demonstrated potent binding of recombinant 5B1, 9H3, 5H11, and 7E3 antibodies to DMS-79 cells and small cell lung cancer suspension cell lines (Figure 11A). Binding of r5B1 and r7E3 was also confirmed in HT29 colon cancer cells (Figure 11B), BxPC3 pancreatic cancer cells (Figure 11C), SW626 ovarian cancer cells (Figure 11D), and Colo205-luc colon cancer cells (Figure 11F). These antibodies were found in sLe a It was unable to bind to SLE121-negative SK-MEL28 melanoma cells (Figure 11E) or EL4 mouse lymphoma cells (data not shown).
[0145] Affinity measurement sLe a The relative affinity / binding activity of binding to biotinylated sLe a -PPA was probed by SPR using a streptavidin-coated biosensor tip to capture it. As shown in Table 6, r5B1 and r7E3 were sLe a - Rapidly binds to PPA, and a commercially available mouse IgM anti-sLe was used for comparison. a It exhibits a significantly slower dissociation rate (off-rate) compared to the antibody 121SLE. Affinity of 5B1 was measured at 0.14 nmol / L, and the apparent affinity / binding activity of 7E3 was approximately four times higher (Table 6). Determination of 9H3 affinity was based on the fact that 9H3 antibodies (native and recombinant) were... a - This was blocked because it could not bind to the PAA-coated biosensor chip.
[0146] [Table 6]
[0147] Specificity analysis Preliminary assays to probe carbohydrate specificity, measured by ELISA or SPR, show that 5B1, 9H3, and 7E3 are closely related.X , Le a , and Le Y It was also shown not to bind to gangliosides GD2, GD3, fucosyl-GM1, GM2, and GM3, or to the antigen. sLe a -PAA-biotin or sLe a -sp-biotin. Additional analysis of the binding of 7E3, 5B1, and 121SLE to sLe a showed that all three antibodies bind to sLe a in its multivalent form, while 7E3 and 5B1 were found to bind to the monovalent form. Similarly, in a series of Biacore concentration analyses, the binding of 5B1 to sLe a -PAA was dose-dependently inhibited by sLe a tetrasaccharide (data not shown). These results are consistent with previous observations that sera with high anti-sLe a antibody titers are specific for sLe y , i.e., do not react with gangliosides GM2, GD2, GD3, fucosyl GM1, or neutral glycolipid globo H and Le a tetrasaccharide and sLe a -HSA conjugate only were able to inhibit the binding to sLe a -HSA conjugate (Table 7).
[0148]
Table 7
[0149] To further investigate carbohydrate specificity, the 5B1 and 7E3 antibodies were also tested by glycan array analysis conducted by the Consortium for Functional Glycomics Core H group. Both antibodies were tested in a 6-chain configuration at 10 μg / mL in a printed array consisting of 465 glycans. The results confirmed that both antibodies exhibited high specificity, and sLe a The tetrasaccharides Neu5Acα2-3Galβ1-3(Fucα1-4)GlcNAcβ and Neu5Gcα2-3Galβ1-3(Fucα1-4)GlcNAcβ are selectively recognized, and sLe x , Le a , Le x , and Le y There was virtually no binding to closely related antigens present in the array, including [specific antigen]. The results are summarized in Table 8, which shows the top five glycan structures recognized by each antibody out of 465 types.
[0150] [Table 8]
[0151] CDC activity To evaluate the functional activity of 5B1 and 7E3, cytotoxic activity was tested in DMS-79 cells in the presence of human serum as a complement source. Both antibodies showed nearly 100% cell death activity at 10 μg / mL in several assays, but control antibodies with different specificities (1B7, anti-GD2 IgG1 mAb) were ineffective at the same concentration (data not shown). CDC activity was concentration-dependent, with 7E3 showing significantly higher activity than 5B1 in this assay (Figure 12), which is predictable given that IgM antibodies have been shown to be more effective in complement-mediated cytotoxicity assays. 50 The (50% cytotoxicity) level was 1.7 μg / mL for 5B1 and 0.1 μg / mL for 7E3. Converting these values, the potency of 7E3 is approximately 85 times greater on a molar basis (Figure 12).
[0152] ADCC activity While CDC assays show significantly greater efficacy of 7E3, IgG antibodies are known to possess antibody-dependent cell-mediated cytotoxicity (ADCC) activity, which is considered important for tumor death in vivo. High levels of cytotoxicity were measured using 5B1 antibody with human PBMCs and DMS-79 target cells at various E:T ratios (Figure 13A). Similar levels of cytotoxicity were observed in primary NK cells at lower E:T ratios (Figure 13B). Dose-response experiments using PBMCs from two donors, measured at an E / T ratio of 100:1, demonstrated similar efficacy, with cytotoxicity reaching over 85% at concentrations of 5B1 of 0.5 μg / mL or greater (Figure 13C). Since 5B1-mediated cytotoxicity can be blocked with 3G8 anti-CD16 antibody, it requires the FcγRIII receptor. Similar high levels of cytotoxicity were measured using 5B1 antibody and human PBMCs with an E:T ratio of 100:1 against Colo205-luc cells. ADCC activity achieved using 1 μg / mL of 5B1 antibody was superior to the activity observed using antibodies against GM2, fucosyl-GM1, globo H, or polysialic acid. As predicted, 7E3 and mouse 121SLE (both IgM) were inactive in this assay.
[0153] 5B1 Internal Distribution Assay Antibody conjugates targeting antigens "closely associated" with Lewis Y have been previously shown to rapidly intercalate and be highly effective in animal models. Hellstrom et al., Cancer Res vol. 50: pp. 2183-90 (1990); Trail et al., Science vol. 261: pp. 212-215 (1993). aTo investigate whether the saporin translocates internally, pancreatic cell lineage BxPC3 was incubated with 5B1, and then Hum-ZAP, an anti-human IgG conjugated with the ribosome-inactivating protein saporin, was added. (Kohls et al., Biotechniques vol. 28: pp. 162-165 (2000)). Cells to which the saporin-containing complex translocates internally are killed, while cells remain intact if the saporin does not translocate internally. As shown in Figure 14, BxPC3 cells are effectively killed in the presence of escalating doses of 5B1, but not in the presence of isotype-matched IgG1 antibodies targeting GD2, which is not expressed in these cells.
[0154] Activity in xenograft animal models related to metastasis To evaluate the activity of 5B1 in vivo, antibodies were tested in two xenograft models using either Colo205-luc tumor cells or DMS-79 tumor cells in SCID mice. In the xenograft model using Colo205-luc tumor cells, 0.5 × 10⁶ cells were administered to 5 mice per group on day 0. 6Cells were injected into the tail vein, and the injection of cells from the head and tail was validated by imaging the animals using the IVIS 200 in vivo imaging system (Caliper Life Sciences). One day later, the animals were treated with either 5B1 antibody administered intraperitoneally or a PBS placebo injection. In Experiment 1, 100 μg of 5B1 was administered on days 1, 7, 14, and 21 (total dose 400 μg), and in Experiment 2, 100 μg of 5B1 was administered to the animals on days 1, 4, 7, 10, 14, and 21 (total dose 600 μg). The median mean survival time for untreated animals in both experiments was 102 days, and all untreated animals died within 155 days (Figure 15). Treatment of the animals significantly improved survival; the median survival time doubled to 207 days in the group administered 5B1 four times, and 2 out of 5 animals survived until the end of the experiment at 301 days (log-rank test, P=0.0499; HR=3.46). The proportion of surviving animals further increased to 3 out of 5 mice after 6 doses (log-rank test, P=0.0064; HR=6.375). The second experiment was completed at 308 days, and the Colo205-luc tumor could not be identified in the surviving animals using the highest sensitivity of the image processing system (data not shown).
[0155] In the second study, mice injected with Colo205-luc tumor cells as described above were treated with escalating doses of 5B1 or 7E3 antibody (100 μg, 300 μg, or 1 mg). All animals received intraperitoneal injection of 5B1 or 7E3 antibody or a PBS sham injection (control) first 4 days after tumor cell injection, then twice weekly for the first two weeks, and once weekly for the following seven weeks. In SCID mice implanted with Colo205-luc tumor cells, delayed treatment with various doses of 5B1 demonstrated dose-dependent protection to complete cure (Figures 16 and 17). Treatment with 7E3 antibody did not demonstrate higher protection despite apparent increased affinity (data not shown).
[0156] In a xenograft model using DMS-79 cells, 1 × 10⁶ cells were administered to 5 mice per group on day 0. 6 The drug is injected subcutaneously, and the tumor length is 5 mm (approximately 20 mm). 2 Treatment was initiated on day 19 after reaching 50°C. Animals were then treated by intraperitoneal injection of human IgG or 5B1 antibody at 200 μg per dose, in addition to intravenous injection of cRGD, initially at 80 μg, then at 40 μg per dose for 5 days per week until day 37. In animals treated with 5B1 or a combination of 5B1 plus cRGD, the growth of established DMS-79 tumors was suppressed or regressed (Figures 18A and 18B). In a subcutaneous model, treating animals with 5B1 on the day of DMS-79 cell implantation completely inhibited tumor growth (data not shown).
[0157] The data above demonstrates a significant ability to suppress or regress established tumors, resulting in a survival benefit when using 5B1 antibody treatment.
[0158] (Example II) Radiolabeled monoclonal antibody 5B1 used in the treatment of pancreatic cancer and other sLesions. a Detection and diagnosis of positive adenocarcinoma by immuno-PET Adenocarcinoma is a leading cause of cancer death. Detecting pancreatic cancer remains particularly difficult, and in many cases, it is diagnosed late. Techniques for early detection of primary and metastatic pancreatic cancer can have significant clinical implications. In clinical practice, sLe is used to identify suspicious, macroscopically invisible malignancies in patients with pancreatic cancer. a Monitor elevated levels of antigen. As described herein, pancreatic cancer and other sLe a sLe in preclinical models of positive adenocarcinoma a We investigated the potential of novel immunoPET imaging probes targeting human anti-sLe. a Monoclonal antibody 5B1 is sLe a It showed positive staining for human adenocarcinoma, which is known to be positive, but sLe aPositive staining was not observed in negative malignant tumors or most normal tissues. 89 Zr radiolabeled 5B1 ( 89 Zr-5B1 showed high labeling yield (>80%) and purification yield (>95%) in subcutaneous orthotopic and metastatic pancreatic cancer xenografts in female SCID mice. 89 Image processing using Zr-5B1 was investigated. Acquired PET images and in vivo distribution studies showed minimal nonspecific binding to healthy tissue, and sLe a For BxPC3 xenografts that overexpress 89 The superior specificity and localization of Zr-5B1 were demonstrated. Further analysis in subcutaneous xenograft models of colon cancer and small cell lung cancer showed similar results. 89 Excellent tumor depiction was achieved with Zr-5B1. Therefore, these results indicate that 89 Zr-5B1 is used in clinics. a It has been shown that it can be used as a molecular probe for the early detection of malignant tumors.
[0159] Cell lineages and tissue cultures All tissue culture procedures were performed according to sterile techniques. Small cell lung cancer DMS79 cells and BxPC3 pancreatic cancer cells were obtained from the American Type Culture Collection (ATCC, Manassas, VA). Colo205-luc colorectal cancer cells (Bioware Ultra) were purchased from Caliper Life Sciences (CLS, Hopkinton, MA). All cells were grown at 37°C in a 5% CO2 humidified atmosphere, according to the recommendations of ATCC and CLS.
[0160] FACS-based sLe a In vitro evaluation of expression levels: Flow cytometry using the indicated cultured cancer cell line was performed as described in Example I of this specification. Briefly, 1 × 10⁶ tumor cells per tube were evaluated. 6The single-cell suspension was washed in PBS with 3% fetal bovine serum (FBS). Then, human monoclonal antibody r5B1(sLe) was applied. a IgG (against goat anti-human IgG) was added to each tube at 20 μg / ml and incubated on ice for 30 minutes. After washing in PBS with 3% FBS, 20 μl of a 1:25 dilution of fluorescein-isothiocyanate (FITC, Southern Biotechnology, Birmingham, AL)-labeled goat anti-human IgG was added, and the mixture was incubated on ice for a further 30 minutes. After the final wash, the positive population and median fluorescence intensity of the stained cells were identified using FACS Scan (Becton & Dickinson, San Jose, CA). Cells stained only with fluorescein-isothiocyanate-labeled goat anti-human IgG were used as a background to compare 1% FACScan results with 1% positive cells stained with primary mAb.
[0161] 89 Preparation of Zr-labeled antibodies Recombinant 5B1 antibody was prepared and purified as described herein. 5B1 antibody and nonspecific human IgG were functionalized with p-isothiocyanate benzyl desferrioxamine (DFO-Bz-NCS, Macrocyclics, Inc., Dallas, TX) in an mAb:DFO-Bz-NCS ratio of 1:4. For example, 7.2 μL of DFO-Bz-NCS (4.25 mM in DMSO) was added to 300 μL of 5B1 (1.23 mg in PBS, pH approximately 9). The reaction mixture was incubated at 37°C for 1–1.5 hours. The functionalized antibody was purified using either a PD10 desalting column (GE Healthcare) or a 10 kDa centrifugal filter (Amicon).
[0162] At MSKCC, Zr-89 was produced by proton irradiation of yttrium foil according to a pre-established procedure, and Zr-89 oxalate was isolated with high purity. (Holland et al., Nuclear Medicine and Biology, Vol. 36: pp. 729-739 (2009)). Antibody labeling was carried out according to the method described by Holland et al., Journal of Nuclear Medicine official publication, Society of Nuclear Medicine, Vol. 51: pp. 1293-300 (2010). In general, Zr-89 oxalate was neutralized to pH 7.0-7.2 with 1M Na2CO3. Then, DFO-antibody was added. The reaction mixture was incubated at room temperature for 1-2 hours. Subsequent purification was performed using a PD10 desalting column with 0.9% physiological saline.
[0163] in vitro experiments 89 The in vitro stability of Zr-5B1 was investigated in 0.9% physiological saline and 1% bovine serum albumin at 37°C for 5 days. Changes in radiochemical purity were monitored from day 0 to 5 using radioactive iTLC with 50 mM DTPA as the mobile phase. In vitro immunoreactivity assays were performed according to the protocol described by Lindmo et al., Journal of Immunological Methods, Vol. 72, pp. 77-89 (1984), to demonstrate the integrity of the Zr-89 radiolabeled antibody.
[0164] Animal models All animal studies were conducted in accordance with the guidelines set by the Institutional Animal Care and Use Committee. Female CB17SC-F SCID mice (Jackson Laboratories, 6 - 8 weeks old, 20 - 22 g) or nude athymic (nu / nu) mice were induced with tumors in the hindlimbs. All cell lines were subcutaneously inoculated in 200 μL of a 1:1 medium:Matrigel (BD Biosciences) solution and allowed to grow to a maximum tumor volume of 250 mm 3 before use.
[0165] In Vivo Distribution Studies In vivo distribution studies were performed on several cohorts of mice (n = 3 - 5) with separate Colo205-luc colorectal xenografts, BxPC3 pancreatic xenografts, and DMS79 small cell lung xenografts. Zr-89 mAb (10 - 20 μCi, 1 - 2 μg) in 100 μL of 0.9% saline was intravenously administered via the lateral vein. Additional unlabeled mAb (10 - 50 μg) was co-injected with the tracer. Blocking studies were performed using 250 μg of excess unlabeled mAb in cohorts of mice to address the specificity of the antibody for sLe a At each time point (t = 24, 48, 120 h p.i.), mice were euthanized by asphyxiation with CO2. Blood was immediately collected by cardiac puncture while tumors were harvested along with selected organs. The wet weight of each tissue was measured and the radioactivity bound to each organ was counted using a Wizard[[ID=
[11] ]] 2 2480 gamma counter (Perkin Elmer). The percentage of tracer uptake (%ID / g), expressed as % of the injected dose per gram, was calculated as the activity bound to the tissue per gram of tissue weight per actually injected dose corrected for decay over the counting time.
[0166] Small Animal immuno-PET Image processing experiments were performed using microPET Focus 120 or R4scanner (Concorde Microsystems). Mice (n=3-5) were administered Zr-89 labeled antibody (200-300 μCi, 15-25 μg) in 100-200 μL of 0.9% saline solution via lateral tail vein injection. Whole-body PET scans were recorded in mice 24-96 hours after injection while anesthetized with 1.5-2.0% isofluorane in oxygen (Baxter Healthcare). Images were analyzed using ASIPro VM™ software (Concorde Microsystems). Regions of interest (ROIs) were extracted and plotted against time.
[0167] Immunohistochemical examination Biotinylated 5B1 was prepared by incubating 20×mol excess sulfo-NHS-LC-biotin (Thermo Scientific / Pierce, cat. 21327) at room temperature for 30 minutes. Free biotin was removed using a Zebra® desalt spin column (Thermo Scientific / Pierce, cat. 89889) according to the manufacturer's instructions. The antibody buffer was replaced with PBS containing 0.01% sodium azide at a concentration of 1.1 mg / ml. Binding to DMS79 cells was confirmed by FACS and was comparable to that of the parental 5B1 antibody.
[0168] Preliminary immunohistochemical staining conditions were determined using Colo205 cells as a positive control and SK-MEL28 cells as a negative control. Cell pellets were prepared, fixed in formalin, and embedded in paraffin. Slides were incubated with biotinylated 5B1 diluted in 10% (v / v) normal human serum in PBS (Jackson ImmunoResearch Labs; cat number 009-000-121). Staining was performed using the standard streptavidin-biotin immunoperoxidase method and DAB detection system via Ventana automation (Discovery XT platform - Ventana Medical Systems, Inc., Tucson, AZ). Antigen recovery was performed using heat and Ventana's CC1 conditioning solution. Competitive results were obtained in a pilot study using CA19.9 mouse monoclonal (clone 116-NS-19-9) from Signet (Covance). Colo205 cells were strongly positive for biotinylated 5B1 used at 10 μg / ml, while SKMEL28 cells were completely negative. The Histo-Array™ tissue microarray was purchased from Imgenex (San Diego, CA). The following slides containing tumor biopsy cores and several normal tissue cores were used: IMH-327 (Common Cancers, 59 samples), IMH-359 (Colorectal: Cancer-Metastasis-Normal; 59 samples), and IMH-324 (Ovarian Metastasis). A pancreatic tumor tissue core was present in IMH-327.
[0169] in vivo s Le a Serum concentration Mice carrying xenografts of Colo205, BxPC3, and DMS79 were introduced into sLe aThe mice were depleted of blood for antigen assay. A group of tumor-free mice served as a control. The ST AIA-PACK CA19.9 kit (Cat number 025271, TOSOH Bioscience Inc, South San Francisco, CA) was used to analyze the sLe levels in the serum of the mice. a The levels were measured. The principle of this assay is based on a two-site immunoassay assay. The analysis was performed as described in the manufacturer's instructions. The optical density of the immunoassay plate was measured using a TOSOH AIA2000 Automated immunoassay analyzer (TOSOH Bioscience, Inc., San Francisco, CA).
[0170] statistical analysis Unless otherwise specified, data values are expressed as mean ± standard deviation. Statistical analysis was performed using GraphPad Prism version 5.03 software, employing one-way ANOVA followed by Dunnett's test. A p-value < 0.05 is considered statistically significant.
[0171] result The binding specificity of 5B1 was probed by staining microarrays of selected malignant and normal tissues. 5B1 reactivity was observed in malignant tumors and sLe. a The study was limited to normal tissues in specific cases where overexpression of was known (Figure 19; Table 9). Most normal tissues were completely negative (Table 9). In contrast, strong positive staining was found in 21 / 34 (62%) of colonic adenocarcinoma, 33 / 57 (58%) of adenocarcinoma metastases to the ovary, and 7 / 9 (66%) of pancreatic ductal carcinoma at various stages (Table 10). As shown in Figure 19, the typical reactivity was extended cytoplasmic staining, and distinct staining of the cell membrane was clearly shown in some tumor cells. Furthermore, some ovarian signet-ring cell carcinomas, as well as some lung and breast cancers, were found to be strongly positive. In contrast, only 4 / 43 of prostate cancer samples were positive, and 0 / 51 of GIST cases were positive (data not shown).
[0172] [Table 9]
[0173] [Table 10]
[0174] sLe staining for 5B1 a The high specificity of this mAb to cancer tissue expressing was the basis for using it as a PET probe. Modification of 5B1 desferrioxamine with a benzyl-isothiocyanate analog (DFO-Bz-NCS) was performed in a 4:1 (chelate:mAb) ratio, followed by purification by centrifugal filtration using physiological saline as the washing buffer. After adjusting the pH to 7.0-7.2, simple radiolabeling with Zr-89 was carried out at room temperature. A narrow pH range close to neutral is necessary to achieve the optimal radiolabeling yield of over 80%. Free, unbound Zr-89 was removed by PD10 desalting column. The product was concentrated using a centrifugal filter (MWCO: 10kDa). Relatively high specific activity of 12.1±1.1 mCi / mg was established. Radiochemical purity of over 95% was ensured before use. Immunoreactivity assays revealed sLe a The activity against was retained (72.4 ± 1.1%, n=3). Stability in bovine serum albumin at 37°C was maintained at over 95% for 5 days (data not shown). In physiological saline, demetallation was observed as early as 24 hours (>85% complex formation), and over 75% of the radioactive metal bound after 120 hours at 37°C.
[0175] We performed small animal PET imaging and in vivo distribution studies using female SCID mice in which a BxPC3 pancreatic cancer xenograft was implanted subcutaneously in the left hind limb. Based on the acquired PET images, 89 Tumor-related sLesione caused by Zr-5B1 aSubstantial depiction was confirmed. From the maximum infiltration (MIP) in Figure 20, BxPC3 xenografts (n=3) showed excellent adhesion of the intravenously administered radiotrace. From PET images, the region of interest (ROI) drawn from the tumor showed uptake of 5.0±0.4% ID / g (2 hours), 16.2±2.5% ID / g (24 hours), 23.8±4.7% ID / g (48 hours), 36.8±6.1% ID / g (96 hours), and 49.5±7.7% ID / g (120 hours). Binding activity in the blood pool and normal tissue appeared to disappear 24 hours after injection. Results from in vivo distribution experiments are consistent with the PET data. 89 High tumor localization of Zr-5B1 (84.7±12.3%ID / g, n=4) was observed, and further increased uptake was shown at 120 hours post-injection (114.1±23.1%ID / g, n=4) (Figure 21). Tumor uptake exceeded 100% (62.4±0.03 mg) due to its low weight. The %ID at 24 hours post-injection was found to be 10 times higher than that of nonspecific IgG at the same time point (inset in Figure 21). Competitive inhibition with 250 μg of unlabeled 5B1 at 24 hours post-injection blocked tracer accumulation that determines the specificity of uptake. 89 Minimal binding of Zr-5B1 to the normal pancreas and the remaining recovered normal tissue was observed, resulting in a high tumor-to-tissue contrast at all time points.
[0176] Based on the results above, in an orthotopic BxPC3 pancreatic tumor model 89 Zr-5B1 was assayed. The orthotopic model is clinically significant and provides a clinically acceptable test of the efficacy of the PET probe. After inoculation into the pancreas, tumor growth was monitored weekly by bioluminescent optical imaging. Once the tumor was palpable, PET imaging experiments were performed. FDG-PET and 89 A comparison of probe tumor visualization between Zr-5B1 was performed (Figure 25). PET and tandem computed tomography (CT) enhanced the visualization of anatomical regions of interest.
[0177] Other sLea As a PET probe in expressive adenocarcinoma 89 To evaluate Zr-5B1, in lung cancer models and colon cancer models... 89 Zr-5B1 was assayed. Small animal experiments were performed using DMS79 small cell lung cancer cells and Colo205-luc colon cancer cells subcutaneously injected into the right hind limb of female SCID mice. PET MIP images were acquired 24 to 120 hours after intravenous injection of 200-300 μCi (16-25 μg). Uptake into xenogeneic DMS79 tumors was demonstrated as early as 24 hours post-injection, with a high signal relative to the background at 38.15 ± 2.12% ID / g (Figure 22A). Tracer tumor accumulation increased at 48 hours post-injection (44.60 ± 6.47% ID / g) and was retained at 120 hours post-injection (41.97 ± 12.23% ID / g). Nonspecific binding was observed. 89 Zr-5B1 rapidly disappeared from normal tissue, with minimal or no background uptake at 48 hours post-injection. Furthermore, as shown in Figure 22B, tumor depiction was observed in Colo205-luc xenografts at 24–120 hours post-injection. ROIs showed tumor accumulation, with values of 10.5±0.76, 23.5±2.7, 24.8±4.0, 18.4±4.7, and 16.5±2.3% ID / g at 2, 24, 48, 96, and 120 hours, respectively. An observable increase in liver accumulation occurred over time, as shown in the region of interest derived from PET images, resulting in decreased uptake into the tumor (Figure 22C). Data from the in vivo distribution study correlated well with the observed PET results (data not shown).
[0178] sLe in mouse serum as the tumor progresses a The levels were quantified. Total blood samples were collected from SCID mice with Colo205 xenografts, SCID mice with DMS79 xenografts, and SCID mice with BxPC3 xenografts, along with a control group without tumors. aThe values were higher in mice that underwent the challenge using Colo205 compared to mice implanted with pancreatic BxPC3 and mice implanted with DSM79, indicating a higher level of sLe. a This was shown (Table 11).
[0179] [Table 11]
[0180] These results indicate that radiolabeled anti-sLea antibody ( 89 Zr-5B1) is used in pancreatic adenocarcinoma and other sLesions. a It has been demonstrated to be specific for the detection and diagnosis of positive adenocarcinoma. 89 Zr-5B1 was produced with excellent yield and purity, while maintaining high specific activity and immunoreactivity. In subcutaneous orthotopic pancreatic tumor models and metastatic pancreatic tumor models... 89 Evaluation of Zr-5B1 resulted in excellent tumor depiction and diagnosis. Preclinical evaluation of this radiotracer in small animals with colon tumors and small cell lung tumors demonstrated the effectiveness of this tracer. a Its universal efficacy against malignant tumors expressing [the specified gene] has been demonstrated.
[0181] (Example III) anti-sLe a Diabody binds to various cancer cell lineages. Two diabodies were generated using the VH and VL domains of the 5B1 and 7E3 clone isolates described herein, and named 5B1CysDb and 7E3CysDb, respectively (Figures 9 and 10). Both diabodies contained a five-amino acid linker region between the VL and VH domains. The C-terminal polyhistidine tag used for purification and detection was also included in both diabodies.
[0182] The binding of three cancer cell lines, 5B1CysDb and 7E3CysDb, to (1) DMS-79 cells, a small cell lung cancer suspension cell line; (2) Capan-2 cells, pancreatic adenocarcinoma cells; and (3) BxPC3 cells, pancreatic cancer cells was assayed by incubating 250,000 cells in 0.2 ml with 10 μg / ml of either 5B1CysDb or 7E3CysDb, respectively. The cell and diabody combinations were incubated in PBS / 2% FBS on ice for 40 minutes.
[0183] After washing, cells were incubated for 40 minutes with 0.2 ml of ALEXA-488-labeled anti-His antibody (Life Technology, Cat No. A21215) diluted 1:1000. After a second wash, cells were analyzed using a Guava flow cytometer. Significant binding to DMS-79, Capan-2, and BxPC3 cells was demonstrated in both 5B1CysDb and 7E3CysDb cells (Table 12).
[0184] [Table 12]
[0185] (Example IV) Administration of 5B1 and Taxol inhibits tumor growth. anti-sLe a The antitumor activity of co-administration of the antibody (5B1) and the chemotherapeutic agent Taxol (paclitaxel) was evaluated in xenograft models of pancreatic cancer and small cell lung cancer. As previously described herein, 1 million BxPc3 cells (pancreatic tumor cells) or 5 million DMS-79 cells (small cell lung cancer cells) were injected into the posterior flank of 6-week-old female CB17 SCID mice (Day 0; N=5). DMS79 tumors had an average tumor size of 193 ± 64 mm². 3The tumors were allowed to grow for 21 days until they reached the specified size. Human IgG or 5B1 (0.5 or 1 mg) was administered intraperitoneally twice weekly (starting on day 21), and Taxol (0.2 mg / dose) was administered intravenously on days 23, 30, 37, and 44. In the DMS-79 xenograft model, co-administration of 5B1 antibody and Taxol significantly restricted tumor growth and resulted in tumor regression compared to individual administration of control human IgG or 5B1 antibody and Taxol (Figure 23).
[0186] In the BxPc3 xenograft model, tumors were allowed to grow for 14 days, at which point they averaged 126±30mm. 3 The patient reached this stage. Taxol was administered intravenously on days 14, 21, 28, and 34 (once a week), and 5B1 was administered twice a week starting on day 14. Co-administration of 5B1 antibody and Taxol significantly restricted tumor growth compared to the control or individual administration of 5B1 antibody and Taxol (Figure 24). These results suggest that anti-sLe is effective in preventing tumor growth and / or reducing tumor size in pancreatic cancer and small cell lung cancer. a The synergistic effect of antibodies and chemotherapy agents has been demonstrated.
[0187] Throughout this application, various publications are referenced. The disclosures of these publications are incorporated into this application by reference in whole to provide a more detailed description of the current state of the art relating to the present invention. Although the present invention has been described with reference to the embodiments provided above, it should be understood that various modifications can be made without departing from the spirit of the invention.
[0188] (Item 1) Isolated polynucleotides encoding an antibody heavy chain or a functional fragment thereof, wherein the antibody heavy chain or functional fragment comprises a variable heavy chain (VH) domain having an amino acid sequence selected from the group consisting of residues 20-142 of SEQ ID NO: 2, residues 20-142 of SEQ ID NO: 6, residues 20-142 of SEQ ID NO: 10, and residues 20-145 of SEQ ID NO: 14. (Item 2) The isolated polynucleotide described in item 1, wherein the amino acid sequence of the VH domain is encoded by a nucleic acid sequence selected from the group consisting of residues 58-426 of SEQ ID NO: 1, residues 58-426 of SEQ ID NO: 5, residues 58-426 of SEQ ID NO: 9, and residues 58-435 of SEQ ID NO: 13. (Item 3) Isolated polynucleotides encoding an antibody light chain or a functional fragment thereof, wherein the antibody light chain or functional fragment comprises a variable light chain (VL) domain having an amino acid sequence selected from the group consisting of residues 20-130 of SEQ ID NO: 4, residues 20-129 of SEQ ID NO: 8, residues 20-130 of SEQ ID NO: 12, and residues 23-130 of SEQ ID NO: 16. (Item 4) The isolated polynucleotide described in item 3, wherein the amino acid sequence of the VL domain is encoded by a nucleic acid sequence selected from the group consisting of residues 58-390 of SEQ ID NO: 3, residues 58-387 of SEQ ID NO: 7, residues 58-390 of SEQ ID NO: 11, and residues 67-390 of SEQ ID NO: 15. (Item 5) Siaryl-Lewis a An isolated antibody or functional fragment thereof that binds to a, wherein the antibody or functional fragment thereof comprises a variable heavy chain (VH) domain, and the VH domain comprises an amino acid sequence selected from the group consisting of residues 20-142 of SEQ ID NO: 2, residues 20-142 of SEQ ID NO: 6, residues 20-142 of SEQ ID NO: 10, and residues 20-145 of SEQ ID NO: 14. (Item 6) Siaryl-Lewis a An isolated antibody or functional fragment that binds to a, wherein the antibody or functional fragment comprises a variable light chain (VL) domain, and the VL domain comprises an amino acid sequence selected from the group consisting of residues 20-130 of SEQ ID NO: 4, residues 20-129 of SEQ ID NO: 8, residues 20-130 of SEQ ID NO: 12, and residues 23-130 of SEQ ID NO: 16. (Item 7) Siaryl-Lewisa An isolated antibody or functional fragment that binds to a variable heavy chain (VH) domain and a variable light chain (VL) domain, wherein the VH domain and the VL domain each contain an amino acid sequence selected from the group consisting of residues 20-142 of SEQ ID NO: 2 and 20-130 of SEQ ID NO: 4; residues 20-142 of SEQ ID NO: 6 and 20-129 of SEQ ID NO: 8; residues 20-142 of SEQ ID NO: 10 and 20-130 of SEQ ID NO: 12; and residues 20-145 of SEQ ID NO: 14 and 23-130 of SEQ ID NO: 16. (Item 8) An isolated antibody or functional fragment thereof as described in any one of items 5 to 7, wherein the antibody is a human antibody. (Item 9) An isolated antibody or functional fragment according to any one of items 5 to 7, wherein the antibody functional fragment is selected from the group consisting of Fab, Fab', F(ab')2, scFV, diabody, triabody, minibody, and single-domain antibody (sdAB). (Item 10) The antibody or functional fragment according to item 9, wherein the antibody functional fragment is a diabody. (Item 11) The antibody or functional fragment according to item 10, wherein the diabody comprises the amino acid sequence of SEQ ID NO: 18 or 20. (Item 12) An isolated antibody or functional fragment thereof according to any one of items 5 to 7, wherein the antibody is a monoclonal antibody. (Item 13) An isolated antibody or functional fragment thereof according to any one of items 5 to 7, wherein the antibody is of the IgG or IgM isotype. (Item 14) The isolated antibody or functional fragment thereof described in item 13, wherein the IgG antibody is of the IgG1 subclass. (Item 15) A conjugate comprising an isolated antibody or functional fragment as described in any one of items 5 to 7, which is conjugated with or recombinantly fused with a diagnostic agent, detectable agent, or therapeutic agent. (Item 16) A conjugate as described in item 15, containing a detectable agent. (Item 17) The detectable agent is zirconium ( 89 The conjugate described in item 16, which is Zr). (Item 18) A pharmaceutical composition comprising an antibody or functional fragment described in any one of items 5 to 7 and a pharmaceutically acceptable carrier. (Item 19) A method for treating or preventing a disease, comprising the step of administering a therapeutically effective amount of the pharmaceutical composition described in item 18 to a subject who is in need of treatment or prevention of a disease. (Item 20) The disease is cancer or tumor formation, and the cells of the cancer or tumor are sLe a The method described in item 19, which expresses the following. (Item 21) The method according to item 19, wherein the cancer or tumor is selected from the group consisting of tumors of the gastrointestinal tract, colon cancer, colorectal adenocarcinoma, metastatic colon cancer, colorectal cancer, pancreatic cancer, pancreatic adenocarcinoma, small cell lung cancer, bladder adenocarcinoma, ovarian signet ring cell carcinoma, ovarian cancer, metastatic cancer, gastric adenocarcinoma, esophageal adenocarcinoma, pharyngeal adenocarcinoma, urogenital adenocarcinoma, and mammary adenocarcinoma. (Item 22) The method according to item 19, further comprising the step of administering a second therapeutic agent simultaneously or sequentially. (Item 23) The method according to item 22, wherein the second therapeutic agent is a chemotherapeutic agent or an immunotherapy agent. (Item 24) A method for detecting a tumor in a subject, comprising the step of administering an effective dose of the conjugate described in item 16 to a subject in which the detection of a tumor is required.
Claims
1. Siaryl-Lewis a A polypeptide comprising an isolated antibody or an antigen-binding fragment thereof that binds to a certain, wherein the antibody or polypeptide comprises a variable heavy chain (VH) domain and a variable light chain (VL) domain, the VH domain having VH CDR1, VH CDR2 and VH CDR3 amino acid sequences, and the VL domain having VL CDR1, VL CDR2 and VL CDR3 amino acid sequences, The VH CDR1 amino acid sequence is residues 45-52 of SEQ ID NO: 2; The VH CDR2 amino acid sequence is residues 70-77 of SEQ ID NO: 2; The VH CDR3 amino acid sequence is residues 116-131 of SEQ ID NO: 2; The VL CDR1 amino acid sequence is residues 45-52 of SEQ ID NO: 4; The VL CDR2 amino acid sequence is residues 70-72 of SEQ ID NO: 4; An isolated antibody or polypeptide whose VL CDR3 amino acid sequence is residues 109-120 of SEQ ID NO:
4.
2. The isolated antibody or polypeptide according to claim 1, wherein the antibody is a human antibody.
3. The polypeptide comprising the antigen-binding fragment is Fab, Fab', F(ab') 2 An isolated antibody or polypeptide according to claim 1 or 2, selected from the group consisting of scFV, diabody, triabody and minibody.
4. The isolated antibody or polypeptide according to claim 3, wherein the polypeptide containing the antigen-binding fragment is a diabody.
5. The isolated antibody or polypeptide according to any one of claims 1 to 4, wherein the antibody is a monoclonal antibody.
6. The isolated antibody or polypeptide according to any one of claims 1 to 5, wherein the antibody is an IgG or IgM isotype.
7. The isolated antibody or polypeptide according to claim 6, wherein the IgG antibody is of the IgG1 subclass.
8. An isolated polynucleotide encoding an antibody or polypeptide according to any one of claims 1 to 7.
9. The isolated polynucleotide according to claim 8, wherein the VH domain of the antibody or polypeptide is encoded by the nucleic acid sequence shown in SEQ ID NO: 1, and the VL domain of the antibody or polypeptide is encoded by the nucleic acid sequence shown in SEQ ID NO:
3.
10. A conjugate comprising an isolated antibody or polypeptide according to any one of claims 1 to 7, which is conjugated with or recombinantly fused with a diagnostic agent, a detectable agent, or a therapeutic agent.
11. The conjugate according to claim 10, comprising a detectable agent.
12. The conjugate according to claim 11, wherein the detectable agent is a radioactive material.
13. The radioactive material is zirconium ( 89 Zr), iodine ( 131 I, 125 I, 124 I, 123 I, and 121 I), carbon ( 14 C, 11 C), sulfur ( 35 S), tritium ( 3 H), indium ( 115 In, 113 In, 112 In, and 111 In), technetium ( 99 Tc), thallium ( 201 Ti), gallium ( 68 Ga, 67 Ga), palladium ( 103 Pd), molybdenum ( 99 Mo), xenon ( 133 Xe), fluorine ( 18 F), 15 O, <^ 13 N, 64 Cu, 94m Tc, 153 Sm, 177 Lu, 159 Gd, 149 [[ID=6^0]]Pm, 140 La, 175 Yb, 166 Ho, 86 Y, 90 Y, 47 Sc, 186 Re, 188 Re, 142 Pr, 105 Rh, 97 Ru, 68 Ge, 57 Co, 65 Zn, 85 Sr, 32 P, 153 Gd, 169 Yb, 51 Cr, 54 Mn, 75 Se, 113 Sn, and 117 Sn, and is selected from the group consisting of the conjugate according to claim 12. It should be noted that there may be some tags that seem to be misformatted in the original text (such as <^ 13 which might be an error). This translation is done based on the best understanding of the provided content.
14. The conjugate according to claim 11, wherein the detectable agent is a fluorescent material.
15. The conjugate according to claim 14, wherein the fluorescent material is selected from the group consisting of umbelliferone, fluorescein, fluorescein isothiocyanate, rhodamine, dichlorotriazinylamine fluorescein, dancylkloride, and phycoerythrin.
16. The conjugate according to claim 10, comprising a therapeutic agent.
17. The conjugate according to claim 16, wherein the therapeutic agent is a radioactive metal.
18. The conjugate according to claim 17, wherein the radioactive metal is an alpha-emitter.
19. The conjugate according to claim 16, wherein the therapeutic agent is an auristatin molecule.
20. The conjugate according to claim 19, wherein the auristatin molecule is selected from the group consisting of auristatin PHE, bryostatin 1, solastatin 10, monomethyl auristatin E (MMAE), and monomethyl auristatin F (MMAF).
21. A pharmaceutical composition comprising an antibody or polypeptide according to any one of claims 1 to 7, a conjugate according to any one of claims 10 to 11, or an isolated polynucleotide according to claim 8 or 9, and a pharmaceutically acceptable carrier.
22. In a subject requiring treatment of a disease, the use of a therapeutically effective amount of the pharmaceutical composition according to claim 21 for the manufacture of a pharmaceutical for treating the disease, wherein the disease is cancer or tumor formation, and the cells of the cancer or tumor are sLe a The expression is used, and the cancer or tumor is selected from the group consisting of colon cancer, colorectal adenocarcinoma, metastatic colon cancer, colorectal cancer, pancreatic cancer, pancreatic adenocarcinoma, and small cell lung cancer.
23. The use according to claim 22, wherein the pharmaceutical agent is administered simultaneously or sequentially with the second therapeutic agent.
24. The use according to claim 23, wherein the second therapeutic agent is a chemotherapy agent or an immunotherapy agent.
25. Use of an effective amount of the conjugate according to any one of claims 10 to 15 for manufacturing a pharmaceutical for detecting tumors in a subject, wherein the tumor of the subject is sLe a The expression is used, and the cancer is selected from the group consisting of colon cancer, colorectal adenocarcinoma, metastatic colon cancer, colorectal cancer, pancreatic cancer, pancreatic adenocarcinoma, and small cell lung cancer.
26. A pharmaceutical composition according to claim 21 for treating a disease in a subject that requires treatment of a disease, wherein the disease is cancer or tumor formation, and the cells of the cancer or tumor are sLe a A pharmaceutical composition that expresses and wherein the cancer or tumor is selected from the group consisting of colon cancer, colorectal adenocarcinoma, metastatic colon cancer, colorectal cancer, pancreatic cancer, pancreatic adenocarcinoma, and small cell lung cancer.
27. The pharmaceutical composition according to claim 26, characterized in that the second therapeutic agent is administered simultaneously with or sequentially to the pharmaceutical composition.
28. The pharmaceutical composition according to claim 27, wherein the second therapeutic agent is a chemotherapy agent or an immunotherapy agent.
29. A composition comprising a conjugate according to any one of claims 10 to 15 for detecting a tumor in a subject, wherein the tumor in the subject is sLe a A composition that expresses and wherein the cancer is selected from the group consisting of colon cancer, colorectal adenocarcinoma, metastatic colon cancer, colorectal cancer, pancreatic cancer, pancreatic adenocarcinoma, and small cell lung cancer.
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